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in-person questions. The tutorials will take place on Monday, May 12, 2025.&nbsp;\u003C/p>\u003Cp style=\"margin-left:0px;\">All tutorials will be recorded and made available on the conference online platform shortly afterward. They can be viewed up to 30 days after the end of the conference, both by virtual attendees that registered for the tutorials, and in-person tutorial participants that want to refresh their memory or catch up on a lecture they missed.\u003C/p>\u003Cp style=\"margin-left:0px;\">No live streaming will be available this year to manage the cost of attendance. A dedicated discussion forum for each tutorial will provide an opportunity to contact the lecturers with questions.\u003C/p>\u003Cfigure class=\"image\">\u003Cimg src=\"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/EFTF_IFCS_2025_Tutorials_ver2_30b2be1c85.jpg\">\u003C/figure>",{"id":5,"__component":1622,"componentVariation":1623,"contactsVariation":1624,"styles":16,"header":16,"sessionsGroup":1625},"content.sessions","Sessions Base","Card Contact Full",[1626],{"id":5,"groupTitle":16,"sessions":1627},[1628,1664,1703,1750,1789,1829,1879,1925,1977,2009,2042,2093],{"id":513,"session":1629},{"id":14,"title":1630,"teaser":1631,"body":1632,"createdAt":1633,"updatedAt":1634,"publishedAt":1635,"url_path_id":1636,"contacts":1637,"url_path":1663},"TUT-01: Two special types of laser frequency stabilization: active optical clock and Faraday laser","\u003Cp style=\"margin-left:0.1pt;\">\u003Cspan style=\"background-color:transparent;color:#000000;\">With the development of fundamental scientific research and advanced technology applications, laser frequency stabilization plays an increasingly important role in fields such as high-precision atomic clocks, gravitational wave detection, measurement of fundamental physical constants, and satellite navigation and positioning. In this tutorial, I will start from the demand for laser frequency stabilization in the field of atomic clock and introduce the commonly used methods of laser frequency stabilization, including the PDH technique, modulation transfer spectroscopy, and so on. Then I will focus on two special laser frequency stabilization methods: active optical clock and Faraday laser.\u003C/span>\u003C/p>","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">The first part is active optical clock, it utilizes the weak coupling feedback between atoms and cavity to form coherent stimulated emission of radiation of multiple atoms, achieving phase locking between atoms and realizing active optical clock laser with excellent phase coherence. Since the atomic gain linewidth of the active optical clock is much narrower than the cavity-mode linewidth, the laser operates in the bad-cavity region, which can effectively suppress the cavity-pulling effect. This is an innovative way to obtain high-coherence, narrow-linewidth lasers. I will mainly analysis inhibited laser, extremely bad-cavity laser, cavityless laser. The second part is about atomic filter-based Faraday laser, which is a new type of semiconductor laser that uses Faraday anomalous dispersion optical filter as frequency-selected component. It realizes frequency stabilization using both optical frequency feedback and selection via the atomic quantum transition. It not only limits the laser frequency within the transmission bandwidth of the atomic filter, but also effectively narrows the laser linewidth. Also, I will introduce some applications of the Faraday laser, such as compact optically pumped cesium beam clock, atomic gravimeter, ultra-stable laser, underwater wireless optical communication, and weak light coherent amplification.\u003C/span>\u003C/p>","2025-01-14T20:49:29.092Z","2025-02-15T22:48:59.234Z","2025-01-14T20:49:31.363Z","81",[1638],{"id":146,"name":1639,"committee":16,"position":16,"affiliation":1640,"email":16,"biography":1641,"createdAt":1642,"updatedAt":1643,"url_path_id":1644,"contactPhoto":1645,"socialLinks":1661,"url_path":1662},"Jingbiao Chen","Peking U","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Jingbiao Chen, Distinguished BOYA Professor at the School of Electronics and Associate Director of the Institute of Quantum Electronics at Peking University, grew up in China and received his Ph.D. degree from Peking University and joined Peking University in 1999. After being a postdoc at Pennsylvania State University from 2002-2004, he returned to Peking University.\u003C/span>\u003C/p>\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Jingbiao Chen has long been engaged in research on quantum frequency standards (atomic clocks) and novel lasers, including active optical clock, Faraday laser, calcium atomic beam optical clock, and compact rubidium/cesium optical clock. He proposed the principle of active optical clock for the first time in 2005, which innovatively utilizes the stimulated radiation of atoms in bad cavity directly as a frequency standard signal. He serves as an executive director of the Chinese Society&nbsp;for&nbsp;Measurement, and a member of the&nbsp;Technical Committee on Time and Frequency of China.\u003C/span>\u003C/p>","2025-01-14T20:45:45.496Z","2025-01-22T20:30:46.123Z","77",{"id":1646,"name":1647,"alternativeText":16,"caption":16,"width":1648,"height":1649,"formats":1650,"hash":1657,"ext":838,"mime":841,"size":1658,"url":1659,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1660,"updatedAt":1660},60,"Jingbiao Chen.jpg",332,330,{"thumbnail":1651},{"ext":838,"url":1652,"hash":1653,"mime":841,"name":1654,"path":16,"size":1655,"width":1656,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Jingbiao_Chen_4492eff08a.jpg","thumbnail_Jingbiao_Chen_4492eff08a","thumbnail_Jingbiao Chen.jpg",3.79,157,"Jingbiao_Chen_4492eff08a",10.63,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Jingbiao_Chen_4492eff08a.jpg","2025-01-14T20:58:24.521Z",[],"-40","-44",{"id":434,"session":1665},{"id":91,"title":1666,"teaser":1667,"body":65,"createdAt":1668,"updatedAt":1669,"publishedAt":1670,"url_path_id":1671,"contacts":1672,"url_path":1702},"TUT-02: Atomic Fountain Clocks","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">The 1967 redefinition of the SI second marked the beginning of the atomic age in frequency and time metrology, with caesium atoms becoming the standard for timekeeping. The development of laser cooling and atom trapping techniques led to the emergence of atomic fountain clocks as the most precise method to realize the SI second, a distinction they continue to hold today. This tutorial will provide an overview of the fundamental principles, challenges, and impact of atomic fountain clocks in precision time and frequency measurements. We will cover the key mechanisms behind their operation, including laser cooling, atom trapping, and Ramsey interrogation, and introduce concepts such as the Bloch sphere and Allan deviation. Additionally, we will explore the performance of fountain clocks in terms of stability and accuracy, examining sources of systematic frequency shifts like collisions, Zeeman shifts, black body radiation, and distributed cavity phase. Finally, the tutorial will highlight the critical role of fountain clocks in global timekeeping and their evolving function as we progress towards a potential redefinition of the SI second.\u003C/span>\u003C/p>","2025-01-14T20:51:20.130Z","2025-02-15T22:49:26.699Z","2025-01-14T20:51:22.186Z","83",[1673],{"id":160,"name":1674,"committee":16,"position":16,"affiliation":1675,"email":16,"biography":1676,"createdAt":1677,"updatedAt":1678,"url_path_id":1679,"contactPhoto":1680,"socialLinks":1700,"url_path":1701},"Scott Beattie","NRC","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Scott Beattie received his PhD from York University in 2009, where he studied atom interferometry in magneto-optical traps. From 2009 to 2012, he conducted postdoctoral research with Zoran Hadzibabic at the University of Cambridge on superfluidity in Bose-Einstein condensates. He then joined the University of Toronto from 2012 to 2014 to study degenerate fermionic gases in the group of Joseph Thywissen. In 2014, Dr. Beattie joined the National Research Council Canada (NRC) in the Frequency and Time group, where his research now focuses on caesium fountain primary frequency standards and frequency.\u003C/span>\u003C/p>","2025-01-14T20:47:32.126Z","2025-01-14T20:56:38.880Z","79",{"id":1681,"name":1682,"alternativeText":16,"caption":16,"width":1683,"height":857,"formats":1684,"hash":1696,"ext":838,"mime":841,"size":1697,"url":1698,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1699,"updatedAt":1699},58,"Scott Beattie.jpg",722,{"small":1685,"thumbnail":1691},{"ext":838,"url":1686,"hash":1687,"mime":841,"name":1688,"path":16,"size":1689,"width":1690,"height":800},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_Scott_Beattie_4eac652f13.jpg","small_Scott_Beattie_4eac652f13","small_Scott Beattie.jpg",32.03,481,{"ext":838,"url":1692,"hash":1693,"mime":841,"name":1694,"path":16,"size":1695,"width":927,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Scott_Beattie_4eac652f13.jpg","thumbnail_Scott_Beattie_4eac652f13","thumbnail_Scott Beattie.jpg",4.2,"Scott_Beattie_4eac652f13",87.15,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Scott_Beattie_4eac652f13.jpg","2025-01-14T20:56:30.693Z",[],"-42","-46",{"id":133,"session":1704},{"id":561,"title":1705,"teaser":1706,"body":65,"createdAt":1707,"updatedAt":1708,"publishedAt":1709,"url_path_id":1710,"contacts":1711,"url_path":1749},"TUT-03: Optical atomic clocks","\u003Cp>The exceptional accuracy of optical clocks is at the basis of the future redefinition of the SI second in terms of an optical frequency. Optical clocks are extraordinary metrological tools which also have applications beyond timekeeping. This tutorial will focus on the principles of optical clocks and their operation, and will give an overview of clock systems based on ions and neutral atoms, comparing their advantages and limitations. We will investigate the challenges of pushing the systematic and statistical uncertainty of optical clocks down to the 10-18 level and below. Next, we will look into the requirements for the optical redefinition of the second, and discuss the international efforts to carry out regular international clock comparison campaigns to satisfy these criteria. Finally, we will talk about some of the applications that make use of these state-of-the-art frequency metrology systems - from testing fundamental physics to relativistic geodesy.\u003C/p>","2025-02-05T06:10:38.315Z","2025-02-15T22:49:40.907Z","2025-02-05T06:10:40.025Z","102",[1712],{"id":420,"name":1713,"committee":16,"position":16,"affiliation":1714,"email":16,"biography":1715,"createdAt":1716,"updatedAt":1716,"url_path_id":1717,"contactPhoto":1718,"socialLinks":1747,"url_path":1748},"Alexandra Tofful","National Physical Laboratory (NPL)","\u003Cp>Dr Alexandra Tofful is an experimental physicist in optical frequency metrology at the National Physical Laboratory (NPL) in Teddington, UK. She obtained her BSc in Physics (2018) from King’s College London, and her MRes in Controlled Quantum Dynamics (2019) and PhD in Physics (2023) from Imperial College London. Her PhD project and current research initiatives are centred around the ytterbium ion optical clock at NPL, which she has been working on since 2019. Alexandra has a leading role in the optimisation and operation of the ytterbium ion optical clock in international clock comparison campaigns. Her focus is on the continuous improvement of the accuracy and stability of the clock, and to increase the level of automation of the experiment and data analysis, striving towards high-uptime unattended clock operation. Alexandra’s research is motivated by the impending redefinition of the SI second in terms of an optical frequency and testing fundamental physics with optical clocks.\u003C/p>","2025-02-05T06:22:05.014Z","106",{"id":152,"name":1719,"alternativeText":16,"caption":16,"width":1720,"height":1721,"formats":1722,"hash":1743,"ext":838,"mime":841,"size":1744,"url":1745,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1746,"updatedAt":1746},"AT_headshot - Alexandra Tofful.jpg",768,1024,{"large":1723,"small":1728,"medium":1733,"thumbnail":1738},{"ext":838,"url":1724,"hash":1725,"mime":841,"name":1726,"path":16,"size":1727,"width":857,"height":844},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/large_AT_headshot_Alexandra_Tofful_5ca28bc294.jpg","large_AT_headshot_Alexandra_Tofful_5ca28bc294","large_AT_headshot - Alexandra Tofful.jpg",114.04,{"ext":838,"url":1729,"hash":1730,"mime":841,"name":1731,"path":16,"size":1732,"width":808,"height":800},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_AT_headshot_Alexandra_Tofful_5ca28bc294.jpg","small_AT_headshot_Alexandra_Tofful_5ca28bc294","small_AT_headshot - Alexandra Tofful.jpg",31.53,{"ext":838,"url":1734,"hash":1735,"mime":841,"name":1736,"path":16,"size":1737,"width":845,"height":857},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/medium_AT_headshot_Alexandra_Tofful_5ca28bc294.jpg","medium_AT_headshot_Alexandra_Tofful_5ca28bc294","medium_AT_headshot - Alexandra Tofful.jpg",67.81,{"ext":838,"url":1739,"hash":1740,"mime":841,"name":1741,"path":16,"size":1742,"width":230,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_AT_headshot_Alexandra_Tofful_5ca28bc294.jpg","thumbnail_AT_headshot_Alexandra_Tofful_5ca28bc294","thumbnail_AT_headshot - Alexandra Tofful.jpg",4.52,"AT_headshot_Alexandra_Tofful_5ca28bc294",122.66,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/AT_headshot_Alexandra_Tofful_5ca28bc294.jpg","2025-02-05T06:21:59.170Z",[],"-66","-62",{"id":179,"session":1751},{"id":98,"title":1752,"teaser":1753,"body":65,"createdAt":1754,"updatedAt":1755,"publishedAt":1756,"url_path_id":1757,"contacts":1758,"url_path":1788},"TUT-04: Quantum Technologies for Sensing","\u003Cp style=\"margin-left:0px;\">The development of quantum mechanics, and the experimental implementation of its results, has revolutionized not only the way we understand our universe but also the approach to solving current technological problems. With the exquisite control of the interaction between light and matter, we have been able to develop new technologies based on the principles of quantum mechanics. These technologies have changed the way we process, store, and transmit information, but also they have changed the way we measure.\u003C/p>\u003Cp style=\"margin-left:0px;\">In this tutorial, I will discuss implementing different quantum technologies and their applications to sensing.\u003C/p>","2025-02-05T06:09:37.404Z","2025-02-21T21:30:01.682Z","2025-02-05T06:09:39.159Z","100",[1759],{"id":266,"name":1760,"committee":16,"position":16,"affiliation":1761,"email":16,"biography":1762,"createdAt":1763,"updatedAt":1764,"url_path_id":1765,"contactPhoto":1766,"socialLinks":1786,"url_path":1787},"Neil V. Corzo","Cinvestav","\u003Cp>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);font-family:Arial, Helvetica, sans-serif;\">I got my PhD in 2012 from Cinvestav-México. During the PhD, I did a research stay of 4 years in the Laser Cooling and Trapping Group at NIST-Gaithersburg. After the PhD, I did two postdoctoral research, the first at Northwestern University (Illinois, USA) and the second at the Laboratories Kastler-Brossel (Paris, France). Since 2018, I have been working at Cinvestav-Querétaro where I have been involved in creating the Quantum Technologies Lab. My research interest is quantum optics for applications in quantum cryptography, quantum gravimeters, quantum simulation with neutral atoms, and ultra-cold matter.\u003C/span>\u003C/p>","2025-02-05T06:25:34.816Z","2025-02-25T18:33:04.585Z","108",{"id":606,"name":1767,"alternativeText":16,"caption":16,"width":1768,"height":1769,"formats":1770,"hash":1782,"ext":838,"mime":841,"size":1783,"url":1784,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1785,"updatedAt":1785},"Neil.jpg",600,385,{"small":1771,"thumbnail":1777},{"ext":838,"url":1772,"hash":1773,"mime":841,"name":1774,"path":16,"size":1775,"width":800,"height":1776},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_Neil_e87be45dca.jpg","small_Neil_e87be45dca","small_Neil.jpg",18.08,321,{"ext":838,"url":1778,"hash":1779,"mime":841,"name":1780,"path":16,"size":1516,"width":1781,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Neil_e87be45dca.jpg","thumbnail_Neil_e87be45dca","thumbnail_Neil.jpg",243,"Neil_e87be45dca",24.25,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Neil_e87be45dca.jpg","2024-12-06T22:03:04.911Z",[],"-68","-60",{"id":480,"session":1790},{"id":352,"title":1791,"teaser":1792,"body":1793,"createdAt":1794,"updatedAt":1795,"publishedAt":1796,"url_path_id":1797,"contacts":1798,"url_path":1828},"TUT-05: What time is it? National and international time scales, applications, and challenges","\u003Cp>Timekeeping in an important international need that calls for accurate and reliable coordination. The international standard time, the Coordinated Universal Time (UTC), is computed by the BIPM based on the contribution of about 450 atomic clocks kept in about 85 laboratories all over the world. Each laboratory contributes with its clocks and primary or secondary frequency standards, compared through GNSS or TWSTFT techniques. All these measures enter in UTC with a weight aiming to optimize the long term stability and accuracy of UTC.\u003C/p>","\u003Cp>It is very important that the national contributions are accurate and reliable, and that each laboratory preprocess the data to validate the submission to the BIPM.&nbsp;\u003C/p>\u003Cp>In recent years the Consultative Committee for Time and Frequency (CCTF) has developed tools to support the autonomous data validation by national laboratories. These capacity building tools available here \u003Ca target=\"_blank\" rel=\"noopener noreferrer\" href=\"https://gcc02.safelinks.protection.outlook.com/?url=https%3A%2F%2Fe-learning.bipm.org%2F&amp;data=05%7C02%7Carchita.hati%40nist.gov%7C26cbd6bdba3f4261ca2008dd4432d28d%7C2ab5d82fd8fa4797a93e054655c61dec%7C0%7C0%7C638741707255642230%7CUnknown%7CTWFpbGZsb3d8eyJFbXB0eU1hcGkiOnRydWUsIlYiOiIwLjAuMDAwMCIsIlAiOiJXaW4zMiIsIkFOIjoiTWFpbCIsIldUIjoyfQ%3D%3D%7C0%7C%7C%7C&amp;sdata=UYu0yGjt3A%2BYtH7QBqIHNQzXXgExNlZWcSR3ZEYlaQs%3D&amp;reserved=0\">https://e-learning.bipm.org\u003C/a>, developed with the support of the UFFC society and of secondees working at the BIPM, will be introduced together with the algorithm for the computation of UTC.&nbsp;\u003C/p>\u003Cp>The role of a national time scale, its coordination with UTC, the applications and needs that are now challenging the international timekeeping as the continuity of UTC and the growing need of synchronization by industries will be presented.\u003C/p>","2025-02-05T06:11:42.842Z","2025-02-15T22:50:16.312Z","2025-02-05T06:11:44.263Z","103",[1799],{"id":637,"name":1800,"committee":16,"position":16,"affiliation":1801,"email":16,"biography":1802,"createdAt":1803,"updatedAt":1803,"url_path_id":1804,"contactPhoto":1805,"socialLinks":1826,"url_path":1827},"Patrizia Tavella","Bureau International des Poids et Mesures","\u003Cp>Patrizia TAVELLA, degree in Physics and PhD in Metrology, is the Director of the Time Department of the Bureau International des Poids et Mesures, after 30 years at the Italian Metrology Institute INRIM. Her main interests are mathematical and statistical models applied to atomic time scales. She was deeply involved in the development of the European Navigation System Galileo. In 2016 she was IEEE UFFC Distinguished Lecturer, she got the Distinguished PTTI Service Award in 2008, the Enrico Fermi Prize in 2020, and the Time Lord Award in 2024.\u003C/p>","2025-02-05T06:13:09.296Z","104",{"id":1806,"name":1807,"alternativeText":16,"caption":16,"width":1808,"height":1809,"formats":1810,"hash":1822,"ext":20,"mime":23,"size":1823,"url":1824,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1825,"updatedAt":1825},88,"patrizia 2019.png",474,568,{"small":1811,"thumbnail":1816},{"ext":20,"url":1812,"hash":1813,"mime":23,"name":1814,"path":16,"size":1815,"width":17,"height":800},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_patrizia_2019_4f17ee2e45.png","small_patrizia_2019_4f17ee2e45","small_patrizia 2019.png",466.88,{"ext":20,"url":1817,"hash":1818,"mime":23,"name":1819,"path":16,"size":1820,"width":1821,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_patrizia_2019_4f17ee2e45.png","thumbnail_patrizia_2019_4f17ee2e45","thumbnail_patrizia 2019.png",53.51,130,"patrizia_2019_4f17ee2e45",138.44,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/patrizia_2019_4f17ee2e45.png","2025-02-05T06:12:53.648Z",[],"-64","-63",{"id":203,"session":1830},{"id":5,"title":1831,"teaser":1832,"body":65,"createdAt":1833,"updatedAt":1834,"publishedAt":1835,"url_path_id":1836,"contacts":1837,"url_path":1878},"TUT-06: Time transfer with and without GNSS","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Global Navigation Satellite Systems (GNSS), like the Global Positioning System (GPS), offer wide and inexpensive dissemination of time signals with nanosecond-level precision and accuracy. By far the most successful use of atomic clocks, GNSS supports billions of dollars of economic activity monthly in the United States alone. We will review the physical basis and common techniques of GNSS time dissemination and time transfer by using GNSS signals as a transfer standard. We highlight the few weaknesses of GNSS: low signal amplitude at Earth's surface admits accidental or purposeful interference; space-borne assets in general are vulnerable to space weather or other failures. What alternatives exist for nanosecond-level time transfer? We will review protocols and techniques for time transfer over computer networks, terrestrial broadcasts and point-to-point transmissions, other space-borne constellations, and direct fiber optic links.\u003C/span>\u003C/p>","2025-01-14T20:42:07.072Z","2025-02-15T22:50:28.397Z","2025-01-14T20:42:09.247Z","75",[1838],{"id":203,"name":1839,"committee":16,"position":16,"affiliation":1840,"email":16,"biography":1841,"createdAt":1842,"updatedAt":1843,"url_path_id":1844,"contactPhoto":1845,"socialLinks":1876,"url_path":1877},"Jeffrey Sherman","NIST","\u003Cp>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(0,0,0);\">Jeff Sherman currently leads the Time Realization and Distribution Group at the National Institute of Standards and Technology. The group maintains and improves NIST systems that produce and distribute official U.S. time, time-interval, and frequency signals based on an ensemble of atomic clocks and frequency references. After undergraduate studies in physics at the University of Texas, Jeff’s research centered around high-precision measurements in optical-atomic systems and includes a Ph.D. in Physics from the University of Washington (2007), postdoctoral work at the University of Oxford, and a National Research Council associateship at NIST. Examples include high-accuracy measurement of atomic polarizability, high-fidelity atomic state readout, and low instability measurement of radio frequency signal phase with software-defined radio techniques.\u003C/span>\u003C/p>","2025-01-14T20:42:52.000Z","2025-01-21T21:42:11.682Z","76",{"id":1846,"name":1847,"alternativeText":16,"caption":16,"width":1848,"height":1849,"formats":1850,"hash":1872,"ext":838,"mime":841,"size":1873,"url":1874,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1875,"updatedAt":1875},59,"Jeff Sherman.jpg",2400,2402,{"large":1851,"small":1857,"medium":1862,"thumbnail":1868},{"ext":838,"url":1852,"hash":1853,"mime":841,"name":1854,"path":16,"size":1855,"width":1856,"height":844},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/large_Jeff_Sherman_86cf488f73.jpg","large_Jeff_Sherman_86cf488f73","large_Jeff Sherman.jpg",106.83,999,{"ext":838,"url":1858,"hash":1859,"mime":841,"name":1860,"path":16,"size":1861,"width":800,"height":800},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_Jeff_Sherman_86cf488f73.jpg","small_Jeff_Sherman_86cf488f73","small_Jeff Sherman.jpg",24.2,{"ext":838,"url":1863,"hash":1864,"mime":841,"name":1865,"path":16,"size":1866,"width":1867,"height":857},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/medium_Jeff_Sherman_86cf488f73.jpg","medium_Jeff_Sherman_86cf488f73","medium_Jeff Sherman.jpg",52.44,749,{"ext":838,"url":1869,"hash":1870,"mime":841,"name":1871,"path":16,"size":1053,"width":26,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Jeff_Sherman_86cf488f73.jpg","thumbnail_Jeff_Sherman_86cf488f73","thumbnail_Jeff Sherman.jpg","Jeff_Sherman_86cf488f73",804.99,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Jeff_Sherman_86cf488f73.jpg","2025-01-14T20:57:33.354Z",[],"-13","-38",{"id":146,"session":1880},{"id":219,"title":1881,"teaser":1882,"body":65,"createdAt":1883,"updatedAt":1884,"publishedAt":1885,"url_path_id":1886,"contacts":1887,"url_path":1924},"TUT-07: Software Defined Radio in the context of stable time and frequency signal generation and dissemination","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Software Defined Radio (SDR) is a discrete time signal processing paradigm aimed at sampling the radiofrequency signal as early as possible and running all processing as software, benefiting from the stability, reconfigurability and tunability of digital algorithms over analog implementation. While commonly used for radiofrequency communication, SDR is perfectly suited for generating stable time and frequency signals and disseminating such signals over wireless links or fibers. In this tutorial, we start by introducing the basics of discrete time signal processing, demonstrating all concepts on the free, opensource software framework GNU Radio, illustrating such awkward concepts as imaginary voltage or negative frequency at the output of an IQ detector. We tackle the issue of IQ imbalance solved by complex mixing in the digital domain, before spreading the spectrum by introducing pseudo-random sequences to complement frequency transfer with time transfer. Following this introduction, we apply the acquired knowledge to process some real signal, including the acquisition step of GPS L1 C/A signals or VLF time transfer signals, to finally address how SDR was used to implement a Two Way Satellite Time and Frequency Transfer (TWSTFT) system. The participants might enjoy reproducing the experiments by bringing their own laptop installed with GNU Radio.\u003C/span>\u003C/p>","2025-01-14T20:51:51.841Z","2025-02-15T22:50:39.513Z","2025-01-14T20:51:53.587Z","84",[1888],{"id":613,"name":1889,"committee":16,"position":16,"affiliation":1890,"email":16,"biography":1891,"createdAt":1892,"updatedAt":1893,"url_path_id":1894,"contactPhoto":1895,"socialLinks":1922,"url_path":1923},"Jean-Michel Friedt","Femto-ST","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Jean-Michel is associate professor at University of Franche-Comté in Besançon, France, with his research activity hosted by the Time &amp; Frequency department of the FEMTO-ST institute. After spending some time developing surface acoustic wave transducers designed as passive wireless sensors probed by short range RADAR systems, he shifted his interest to the use of SDR for time and frequency signal generation and dissemination, including SDR-RADAR, promoting the use of the free, opensource framework GNU Radio for teaching and training the topics related to discrete time signal processing. He aims at maintaining the SDR framework found at&nbsp;\u003C/span>\u003Ca target=\"_blank\" rel=\"noopener noreferrer\" href=\"https://github.com/oscimp/oscimpDigital\">\u003Cspan style=\"background-color:transparent;color:#0563c1;\">\u003Cu>https://github.com/oscimp/oscimpDigital\u003C/u>\u003C/span>\u003C/a>\u003Cspan style=\"background-color:transparent;color:#000000;\"> and is the co-author of ``Communication Systems Engineering with GNU Radio: A Hands-on Approach''.\u003C/span>\u003C/p>","2025-01-14T20:48:14.809Z","2025-01-14T20:48:39.187Z","80",{"id":1542,"name":1896,"alternativeText":16,"caption":16,"width":1897,"height":1897,"formats":1898,"hash":1918,"ext":838,"mime":841,"size":1919,"url":1920,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1921,"updatedAt":1921},"Jean-Michel Friedt.jpg",1216,{"large":1899,"small":1904,"medium":1909,"thumbnail":1914},{"ext":838,"url":1900,"hash":1901,"mime":841,"name":1902,"path":16,"size":1903,"width":844,"height":844},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/large_Jean_Michel_Friedt_4a445a21df.jpg","large_Jean_Michel_Friedt_4a445a21df","large_Jean-Michel Friedt.jpg",149.52,{"ext":838,"url":1905,"hash":1906,"mime":841,"name":1907,"path":16,"size":1908,"width":800,"height":800},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_Jean_Michel_Friedt_4a445a21df.jpg","small_Jean_Michel_Friedt_4a445a21df","small_Jean-Michel Friedt.jpg",49.35,{"ext":838,"url":1910,"hash":1911,"mime":841,"name":1912,"path":16,"size":1913,"width":857,"height":857},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/medium_Jean_Michel_Friedt_4a445a21df.jpg","medium_Jean_Michel_Friedt_4a445a21df","medium_Jean-Michel Friedt.jpg",94.92,{"ext":838,"url":1915,"hash":1916,"mime":841,"name":1917,"path":16,"size":68,"width":26,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Jean_Michel_Friedt_4a445a21df.jpg","thumbnail_Jean_Michel_Friedt_4a445a21df","thumbnail_Jean-Michel Friedt.jpg","Jean_Michel_Friedt_4a445a21df",202.02,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Jean_Michel_Friedt_4a445a21df.jpg","2025-01-14T20:46:26.939Z",[],"-43","-47",{"id":140,"session":1926},{"id":113,"title":1927,"teaser":1928,"body":1929,"createdAt":1930,"updatedAt":1931,"publishedAt":1932,"url_path_id":1933,"contacts":1934,"url_path":1976},"TUT-08: Optical fiber links for time and frequency transfer","\u003Cp>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">The very high stability and accuracy of state-of-the-art optical frequency standards require matching techniques for comparison and dissemination. For example, demonstrating agreement between different (possibly remote) optical frequency standards with an uncertainty below 5 × 10\u003C/span>\u003Csup>−18\u003C/sup>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\"> is a key requirement towards the redefinition of the SI second. Optical fibre links have emerged as an excellent tool to meet this challenge.\u003C/span>\u003C/p>","\u003Cp>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">In this tutorial, we will first focus \u003C/span>\u003Cstrong>optical frequency transfer over fibre\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">, which offers the lowest instability and best accuracy over distances up to thousands of kilometres to date. Starting from \u003C/span>\u003Cstrong>basic concepts of frequency transfer\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">, we will investigate which \u003C/span>\u003Cstrong>factors limit the performance of fibre links\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">, and how and to which degree some of them \u003C/span>\u003Cstrong>can be overcome\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">. We will also look at \u003C/span>\u003Cstrong>typical implementations\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\"> and discuss \u003C/span>\u003Cstrong>practical aspects\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">, including specific challenges of \u003C/span>\u003Cstrong>long-distance fibre links\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">.\u003C/span>\u003C/p>\u003Cp>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">For many applications, synchronisation or time transfer is important. We will discuss how this relies on the same concepts yet goes beyond frequency transfer. We will look at some \u003C/span>\u003Cstrong>options for implementing time transfer over fibre\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\"> and the \u003C/span>\u003Cstrong>performance achievable\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">. For comparison, I'll provide a brief outlook at what is possible with \u003C/span>\u003Cstrong>free-space links\u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">.\u003C/span>\u003C/p>","2025-02-18T04:46:22.800Z","2025-02-18T04:49:17.487Z","2025-02-18T04:46:33.410Z","119",[1935],{"id":217,"name":1936,"committee":16,"position":16,"affiliation":1937,"email":16,"biography":1938,"createdAt":1939,"updatedAt":1939,"url_path_id":1940,"contactPhoto":1941,"socialLinks":1974,"url_path":1975},"Jochen Kronjäger","Physikalisch-Technische Bundesanstalt (PTB)","\u003Cp>Jochen Kronjäger PhD\u003Cstrong> \u003C/strong>\u003Cspan style=\"background-color:rgb(255,255,255);color:rgb(34,34,34);\">received the diploma degree in physics from Philipps-Universität Marburg, Marburg, Germany, in 2001, and the Ph.D. degree in physics from Universität Hamburg, Hamburg, Germany, in 2007. After postdoc positions at Universität Hamburg and University of Birmingham, Birmingham, U.K., he joined the National Physical Laboratory (NPL), Teddington, U.K., as a Senior Research Scientist in 2013. He was involved in setting up and utilizing NPL’s dedicated optical fiber link to Paris, which enables intercomparison of optical frequency standards with several European partners. In 2022 Jochen joined Physikalisch-Technische Bundesanstalt (PTB), Braunschweig, Germany, where he leads the research group on optical frequency dissemination with optical fibres.\u003C/span>\u003C/p>","2025-02-18T04:45:34.787Z","118",{"id":1156,"name":1942,"alternativeText":16,"caption":16,"width":1943,"height":1944,"formats":1945,"hash":1970,"ext":1947,"mime":841,"size":1971,"url":1972,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":1973,"updatedAt":1973},"Jochen Kronjaeger 2018.JPG",3648,5472,{"large":1946,"small":1953,"medium":1959,"thumbnail":1964},{"ext":1947,"url":1948,"hash":1949,"mime":841,"name":1950,"path":16,"size":1951,"width":1952,"height":844},".JPG","https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/large_Jochen_Kronjaeger_2018_54ead2ca7e.JPG","large_Jochen_Kronjaeger_2018_54ead2ca7e","large_Jochen Kronjaeger 2018.JPG",58.27,667,{"ext":1947,"url":1954,"hash":1955,"mime":841,"name":1956,"path":16,"size":1957,"width":1958,"height":800},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_Jochen_Kronjaeger_2018_54ead2ca7e.JPG","small_Jochen_Kronjaeger_2018_54ead2ca7e","small_Jochen Kronjaeger 2018.JPG",19.21,333,{"ext":1947,"url":1960,"hash":1961,"mime":841,"name":1962,"path":16,"size":1963,"width":800,"height":857},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/medium_Jochen_Kronjaeger_2018_54ead2ca7e.JPG","medium_Jochen_Kronjaeger_2018_54ead2ca7e","medium_Jochen Kronjaeger 2018.JPG",36.61,{"ext":1947,"url":1965,"hash":1966,"mime":841,"name":1967,"path":16,"size":1968,"width":1969,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Jochen_Kronjaeger_2018_54ead2ca7e.JPG","thumbnail_Jochen_Kronjaeger_2018_54ead2ca7e","thumbnail_Jochen Kronjaeger 2018.JPG",3.48,104,"Jochen_Kronjaeger_2018_54ead2ca7e",1057.42,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Jochen_Kronjaeger_2018_54ead2ca7e.JPG","2025-02-18T04:45:12.885Z",[],"-74","-75",{"id":160,"session":1978},{"id":240,"title":1979,"teaser":1980,"body":65,"createdAt":1981,"updatedAt":1982,"publishedAt":1983,"url_path_id":1984,"contacts":1985,"url_path":2008},"TUT-09: Chip-scale atomic devices","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Chip-scale atomic clocks, and associated technology such as chip-scale atomic magnetometers are now successful commercial products and research within this scientific field continues to be highly active. This tutorial will cover the design, fabrication and performance of chip-scale atomic devices including frequency stability, size, weight, power and manufacturability. The key physics elements that underlie these instruments will be discussed, as well as the most important application spaces in which these devices are used.&nbsp; Current trends in the area of chip-scale atomic devices will be presented and some speculation for the future will be discussed.\u003C/span>\u003C/p>","2025-01-22T20:29:04.447Z","2025-02-05T06:07:00.255Z","2025-01-22T20:29:07.220Z","86",[1986],{"id":494,"name":1987,"committee":16,"position":16,"affiliation":1840,"email":16,"biography":1988,"createdAt":1989,"updatedAt":1989,"url_path_id":1990,"contactPhoto":1991,"socialLinks":2006,"url_path":2007},"John Kitching","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">Dr. John Kitching is the Leader of the Atomic Devices and Instrumentation Group in NIST’s Physical Measurements Laboratory and a NIST Fellow. He received his PhD in Applied Physics from the California Institute of Technology in 1995 and since then has worked in the Time and Frequency Division at NIST. His research interests include miniaturized atomic clocks and sensors, and applications of semiconductor lasers and micromachining technology to problems in atomic physics and frequency control. He and his group pioneered the development of microfabricated “chip-scale” atomic devices for use as frequency references, magnetometers and other sensors. He is a Fellow of the American Physical Society, the IEEE and the National Academy of Inventors and has received many awards for his work including the Department of Commerce Silver and Gold Medals, the 2015 IEEE Sensors Council Technical Achievement Award, the 2016 IEEE-UFFC Rabi Award and the 2014 Rank Prize. In 2023, he was made a Fellow of the National Academy of Inventors for the invention of the chip-scale atomic clock and the chip-scale atomic magnetometer. He has published over 100 papers in refereed journals, has given numerous invited and plenary talks and has been awarded seven patents.&nbsp;\u003C/span>\u003C/p>","2025-01-22T20:28:44.103Z","85",{"id":1992,"name":1993,"alternativeText":16,"caption":16,"width":1994,"height":1995,"formats":1996,"hash":2002,"ext":838,"mime":841,"size":2003,"url":2004,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":2005,"updatedAt":2005},75,"John.jpg",197,246,{"thumbnail":1997},{"ext":838,"url":1998,"hash":1999,"mime":841,"name":2000,"path":16,"size":2001,"width":970,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_John_ac2779dfc9.jpg","thumbnail_John_ac2779dfc9","thumbnail_John.jpg",3.68,"John_ac2779dfc9",7.72,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/John_ac2779dfc9.jpg","2025-01-22T20:28:17.102Z",[],"-39","-48",{"id":613,"session":2010},{"id":45,"title":2011,"teaser":2012,"body":2013,"createdAt":2014,"updatedAt":2015,"publishedAt":2016,"url_path_id":2017,"contacts":2018,"url_path":2041},"TUT-10: Epitaxial LiNbO3 films for acoustic devices","\u003Cp style=\"text-align:justify;\">\u003Cspan style=\"background-color:transparent;color:#000000;\">The next generation of Radio-Frequency (RF) wide-band filters and frequency-agile filters is urgently needed for the development of 5G-6G infrastructures, networks, and communications. Currently, LiNbO₃ and LiTaO₃ single crystals and single-crystal films are key materials in electro-optics and RF acoustic filters. This motivates further development of acoustic wave devices based on high electromechanical coupling deposited LiNbO₃ thin films, tailored to the aforementioned RF applications. The growth of LiNbO₃ films has been considered particularly challenging due to the difficulties in controlling the film composition, orientation, and physical properties.\u003C/span>\u003C/p>","\u003Cp>\u003Cspan style=\"background-color:transparent;color:#000000;\">In this lecture, the challenges and achievements in the epitaxial growth of LiTaO₃ and LiNbO₃ thin films, as well as their integration with silicon technology and acoustic devices, will be discussed in detail. The lecture will provide a comprehensive overview of various deposition techniques and their capabilities to produce LiNbO₃ and LiTaO₃ films with controlled composition including Li nonstoichiometry characterization methods. Approaches for achieving different orientations of LiNbO₃ using epitaxial growth on single-crystalline substrates will be explained. The methodology for evaluating the orientation and texture effects on the physical properties of LiNbO₃ and LiTaO₃ thin films will also be introduced. Finally, the potential for integrating LiNbO₃ and LiTaO₃ with bottom electrodes and heterostructures based on silicon will be reviewed.\u003C/span>\u003C/p>","2025-01-14T20:50:49.431Z","2025-02-15T22:51:03.785Z","2025-01-14T20:50:51.186Z","82",[2019],{"id":140,"name":2020,"committee":16,"position":16,"affiliation":2021,"email":16,"biography":2022,"createdAt":2023,"updatedAt":2023,"url_path_id":2024,"contactPhoto":2025,"socialLinks":2039,"url_path":2040},"Ausrine Bartasyte","FEMTO-ST","\u003Cp>\u003Cspan style=\"background-color:#ffffff;color:#333333;\">Dr. A. Bartasyte is a Full Professor at FEMTO-ST Institute, University of Franche-Comté (UFC) since 2019, Junior Chair for Innovation at the Institut Universitaire de France (IUF) since 2022, and associated researcher at C2N, University of Paris-Saclay since 2024. She earned her PhD at LMGP, Grenoble INP (2008, Best PhD Thesis award), conducted postdoctoral research at Oxford University on LN-LT single crystal growth and treatment, and completed a sabbatical at Harvard University focusing on thin films for photonic applications. Dr. Bartasyte has over 20 years of expertise in the deposition of epitaxial multifunctional oxides and heterostructures (superconductors, mixed conductors, high-k dielectrics, ferroelectrics) using liquid injection MOCVD and RF sputtering. Her current research focuses on Li(K)Nb(Ta)O₃ thin films and single crystals for acoustic, energy harvesting, and photonic applications. She has delivered 40 invited presentations &amp; 11 seminars, co-authored 90 scientific articles and 7 patents, and coordinated French national projects, European MSCA networks, and industrial collaborations. Currently supervising 5 PhD students (14 defended) and she is a member of IUF office and its scientific&amp; strategic committee, and a Coordinator of EuroNanolab network training activities.&nbsp; She previously served as Deputy Director FEMTO-ST and Vice President of a French national project selection committee and organized 9 national/European Schools.\u003C/span>\u003C/p>","2025-01-14T20:46:46.574Z","78",{"id":1432,"name":2026,"alternativeText":16,"caption":16,"width":2027,"height":1021,"formats":2028,"hash":2035,"ext":838,"mime":841,"size":2036,"url":2037,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":2038,"updatedAt":2038},"Ausrine Bartasyte.jpg",407,{"thumbnail":2029},{"ext":838,"url":2030,"hash":2031,"mime":841,"name":2032,"path":16,"size":2033,"width":2034,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Ausrine_Bartasyte_a467af0c7c.jpg","thumbnail_Ausrine_Bartasyte_a467af0c7c","thumbnail_Ausrine Bartasyte.jpg",3.59,146,"Ausrine_Bartasyte_a467af0c7c",15.48,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Ausrine_Bartasyte_a467af0c7c.jpg","2025-01-14T20:46:26.076Z",[],"-41","-45",{"id":494,"session":2043},{"id":798,"title":2044,"teaser":65,"body":2045,"createdAt":2046,"updatedAt":2047,"publishedAt":2048,"url_path_id":2049,"contacts":2050,"url_path":2092},"TUT-11: Frequency Stability and Phase Noise in MEMS/NEMS Resonators and Oscillators","\u003Cp style=\"text-align:justify;\">Resonant micro/nanoelectromechanical systems (MEMS/NEMS) have already emerged as transformative technologies, not only to continue advancing industry applications, but also to enable new tools and techniques in fundamental scientific explorations in both classical and quantum regimes. &nbsp;In many of such technological applications and high-precision measurements, frequency stability and noise metrology are crucial, because the measurements of many important quantities of interest are often translated into measuring the frequencies of resonant MEMS/NEMS transducers, or their self-sustained feedback oscillators or clocks. &nbsp;This tutorial will first provide an overview of the basic principles and key characteristics of resonant MEMS/NEMS. &nbsp;It will then focus on fundamentals and techniques of quantifying frequency stability and phase noise in resonant MEMS/NEMS, the noise processes and their underlying mechanisms, as well as how they affect the measurements of frequency stability and phase noise. &nbsp;Conventional methods and state-of-the-art experimental techniques will be reviewed and analyzed. &nbsp;Case studies of various modern MEMS/NEMS resonators and feedback oscillators featuring different signal transduction mechanisms will also be discussed. &nbsp;\u003C/p>","2025-02-05T06:07:50.575Z","2025-03-04T20:38:17.727Z","2025-02-05T06:07:52.519Z","99",[2051],{"id":245,"name":2052,"committee":16,"position":16,"affiliation":2053,"email":16,"biography":2054,"createdAt":2055,"updatedAt":2056,"url_path_id":2057,"contactPhoto":2058,"socialLinks":2090,"url_path":2091},"Philip Feng","University of Florida","\u003Cp style=\"margin-left:0in;text-align:justify;\">\u003Ca target=\"_blank\" rel=\"noopener noreferrer\" href=\"https://scholar.google.com/citations?user=uLUzQdkAAAAJ&amp;hl=en\">Philip Feng\u003C/a> is currently a Wally Rhines Endowed Professor in Department of Electrical &amp; Computer Engineering (ECE) and a Graduate Faculty Professor in Department of Physics at University of Florida, Gainesville, FL, USA. He received his Ph.D. in EE from Caltech in 2007 for developing ultra-high frequency (UHF) nanoelectromechanical systems (NEMS) with low-noise measurements and feedback oscillators for real-time resonant sensing and frequency control applications. His group’s research has primarily focused on emerging semiconductor devices and integrated micro/nanoscale systems, especially those in advanced semiconductors (SiC and other wide/ultrawide-bandgap (WBG/UWBG) materials), 2D materials and heterostructures, and their heterogeneous integration with mainstream electronic and photonic technologies. He has graduated more than 15 Ph.D. students and mentored 10 postdoctoral scholars. He has also supervised 16 M.S. students (with theses or research projects), and over 20 undergraduates through senior projects/theses or NSF REU programs (including 2 NSF GRFP recipients). His awards include the National Aademcy of Engineering (NAE) Grainger Foundation Frontiers of Engineering (FOE) Award, the National Science Foundation (NSF) CAREER Award, the Presidential Early Career Award for Scientists and Engineers (PECASE), and several Best Paper Awards (with his students) at IEEE and other international conferences. He has served on the international steering committee (ISC) for IEEE MEMS and Transducers conferences, and the executive and technical program committees for IEEE IEDM/MEMS/Transducers/IFCS-EFTF. He was a track 4 chair for IFCS from 2017 to 2019, and was a chair for IEEE MEMS 2021. Feng’s research publications are&nbsp;\u003Ca target=\"_blank\" rel=\"noopener noreferrer\" href=\"https://scholar.google.com/citations?user=uLUzQdkAAAAJ&amp;hl=en\">here\u003C/a>.&nbsp;\u003C/p>","2025-02-05T06:25:20.176Z","2025-03-04T20:38:58.661Z","107",{"id":230,"name":2059,"alternativeText":16,"caption":16,"width":2060,"height":2061,"formats":2062,"hash":2086,"ext":20,"mime":23,"size":2087,"url":2088,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":2089,"updatedAt":2089},"PhilipFeng-Photo1.png",1069,950,{"large":2063,"small":2069,"medium":2075,"thumbnail":2080},{"ext":20,"url":2064,"hash":2065,"mime":23,"name":2066,"path":16,"size":2067,"width":844,"height":2068},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/large_Philip_Feng_Photo1_134a1da368.png","large_Philip_Feng_Photo1_134a1da368","large_PhilipFeng-Photo1.png",1454.14,889,{"ext":20,"url":2070,"hash":2071,"mime":23,"name":2072,"path":16,"size":2073,"width":800,"height":2074},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/small_Philip_Feng_Photo1_134a1da368.png","small_Philip_Feng_Photo1_134a1da368","small_PhilipFeng-Photo1.png",413.36,444,{"ext":20,"url":2076,"hash":2077,"mime":23,"name":2078,"path":16,"size":2079,"width":857,"height":1952},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/medium_Philip_Feng_Photo1_134a1da368.png","medium_Philip_Feng_Photo1_134a1da368","medium_PhilipFeng-Photo1.png",878.52,{"ext":20,"url":2081,"hash":2082,"mime":23,"name":2083,"path":16,"size":2084,"width":2085,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Philip_Feng_Photo1_134a1da368.png","thumbnail_Philip_Feng_Photo1_134a1da368","thumbnail_PhilipFeng-Photo1.png",59.64,176,"Philip_Feng_Photo1_134a1da368",316.08,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Philip_Feng_Photo1_134a1da368.png","2025-03-04T20:38:56.491Z",[],"-67","-59",{"id":224,"session":2094},{"id":460,"title":2095,"teaser":2096,"body":65,"createdAt":2097,"updatedAt":2098,"publishedAt":2099,"url_path_id":2100,"contacts":2101,"url_path":2124},"TUT-12: Low-noise digital electronics for time and frequency metrology","\u003Cp>This tutorial focuses on the role of electronics in time and frequency metrology. It shows why a proper design of the electronic apparatus is a key aspect of an application: a new experiment, instrument or facility. After a brief comparison of off-the-shelf commercial versus custom solutions, the tutorial will show how to develop a custom high-performance and flexible apparatus. High performance is provided by low noise components, while flexibility is guaranteed by digital devices, in particular by Field Programmable Gate Arrays (FPGAs). Practical examples among vapor cell clocks, coherent fiber links and timescale generation in realtime are then provided for clarifying the advantages of this approach.\u003C/p>","2025-02-05T06:10:03.890Z","2025-02-15T22:52:55.154Z","2025-02-05T06:10:07.479Z","101",[2102],{"id":401,"name":2103,"committee":16,"position":16,"affiliation":2104,"email":16,"biography":2105,"createdAt":2106,"updatedAt":2106,"url_path_id":2107,"contactPhoto":2108,"socialLinks":2122,"url_path":2123},"Claudio Calosso","NRIM","\u003Cp>Claudio Eligio Calosso was born Asti (Italy) in 1973. In 2002, he received his Ph.D. degree in communication and electronic engineering at the Polytechnic of Turin (Italy) and, in the same year, he joined to IEN. Now he is permanent researcher at INRIM (Italy), where he develops low noise digital electronics for time and frequency applications. His activities include primary frequency standards, vapor cells clocks, frequency dissemination over fiber links, phasemeters, frequency division and synthesis and, recently, real-time time scale generation. He is also interested in signal analysis, with particular attention to the role of aliasing in time interval counters and two-sample variances.\u003C/p>","2025-02-05T06:15:29.368Z","105",{"id":2109,"name":2110,"alternativeText":16,"caption":16,"width":2111,"height":1535,"formats":2112,"hash":2118,"ext":20,"mime":23,"size":2119,"url":2120,"previewUrl":16,"provider":30,"provider_metadata":16,"createdAt":2121,"updatedAt":2121},89,"Claudio.png",290,{"thumbnail":2113},{"ext":20,"url":2114,"hash":2115,"mime":23,"name":2116,"path":16,"size":2117,"width":970,"height":26},"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/thumbnail_Claudio_80d7bb34c3.png","thumbnail_Claudio_80d7bb34c3","thumbnail_Claudio.png",38.36,"Claudio_80d7bb34c3",47.62,"https://confcats-siteplex.s3.us-east-1.amazonaws.com/ifceftf25/Claudio_80d7bb34c3.png","2025-02-05T06:15:06.727Z",[],"-65","-61",{"data":2126,"meta":2127},{"id":133,"heading":180,"createdAt":185,"updatedAt":186,"publishedAt":187,"url_path_id":188,"url_path":191,"contentType":103},{},1778852647305]