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X-ORIGINAL-URL:https://asrc.gc.cuny.edu
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BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241002T120000
DTEND;TZID=America/New_York:20241002T140000
DTSTAMP:20260811T011108
CREATED:20240930T162946Z
LAST-MODIFIED:20240930T162946Z
UID:10001453-1727870400-1727877600@asrc.gc.cuny.edu
SUMMARY:Structural Biology SuperGroup
DESCRIPTION:
URL:https://asrc.gc.cuny.edu/event/structural-biology-supergroup/
LOCATION:ASRC Auditorium\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Structural Biology
ORGANIZER;CN="Denise Favaro":MAILTO:dfavaro@gc.cuny.edu
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241009T160000
DTEND;TZID=America/New_York:20241009T170000
DTSTAMP:20260811T011108
CREATED:20240901T011439Z
LAST-MODIFIED:20240919T165614Z
UID:10001446-1728489600-1728493200@asrc.gc.cuny.edu
SUMMARY:Photonics Initiative Seminar: Jonathan Pelliciari
DESCRIPTION:Co-sponsored with CCNY. \nUsing Resonant Inelastic X-Ray Scattering to study quantum materials \nAbstract – Modern light sources like the NSLS-II at Brookhaven National Lab deliver bright tunable photons in a wide range of energies from the THz regime up to 100 keV. This allowed the development of scattering techniques relying on the use of atomic resonances enabling the access to the electronic degrees of freedom in materials. Resonant Inelastic X-Ray Scattering (RIXS) is one of these techniques and thanks to the massive development in instrumentation and theory is playing a significant role in the study of quantum materials with contributions in multiple fields such as superconductivity\, quantum magnetism\, 2D materials\, and lately single photon emission. The sensitivity of RIXS to bosonic excitations of different nature (spin\, orbital\, lattice\, and charge) can provide microscopic information on materials as a function of energy and momentum. In my seminar I will start by introducing RIXS its capabilities and limitations\, followed by a description of the experimental components needed to perform high-resolution RIXS and the solution that we developed at BNL. I will then move forward by highlighting three scientific cases in different fields. The first will involve our investigations on superconducting infinite layer nickelates where we studied the evolution of the spin dynamics across the superconducting dome akin to past studies on the cuprates. The second case regards the study of quantum emitters in hBN where in collaboration with CUNY we could unveil vibronic states and connect them to the signals detected in photoluminescence possibly identifying N2 molecular vibrations as the key for the emergence of quantum emission. Finally\, I will conclude by highlighting one of our studies on excitons in 2D van der Waals magnets where we could detect their nature\, evolution as a function of charge transfer energy (and hybridization)\, and their dispersion in momentum space. \n[1] Ament et al.\, Rev. Mod. Phys. 83\, 705\n[2] Fan et al.\, unpublished\n[3] Pelliciari et al.\, Nat. Mat. 23\, 1230\n[4] Occhialini et al.\, Phys. Rev. X 14\, 031007 \nBio – Jonathan (Johnny) Pelliciari is an Associate Scientist at NSLS-II where he uses advanced scattering techniques (including Resonant Elastic and Inelastic X-Ray Scattering RIXS) to investigate the electronic properties of quantum materials. He got a Bachelor and Master degree in Chemistry at the University of Modena and Reggio Emilia (Italy) and a PhD in Experimental Condensed Matter Physics at the Paul Scherrer Institute and University of Fribourg/Freiburg (Switzerland). His research involves the study of electronic orders such charge and spin density waves and the elementary (spin\, charge\, orbital\, and lattice) excitations in superconductors\, low dimensional systems\, and materials displaying metal-to-insulator transitions. Overall\, his research interests span different physical phenomena such as ultrafast phenomena\, unconventional charge density waves\, spin excitations\, superconductivity\, 2D van der Waals systems\, spin liquids\, and quantum emitters. He developed a laser-RIXS setup commissioned at the SIX beamline to study quantum materials and their ultrafast transitions. \nHe has several active collaborations with external universities and research institutes (CUNY\, Stanford\, MIT\, Yale\, Harvard\, University of Zagreb\, and PSI) on different projects.
URL:https://asrc.gc.cuny.edu/event/photonics-initiative-seminar-jonathan-pelliciari/
LOCATION:CCNY Marshak room 418\, 160 Convent Avenue\, New York\, NY\, 10031\, United States
CATEGORIES:Photonics
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241010T140000
DTEND;TZID=America/New_York:20241010T150000
DTSTAMP:20260811T011108
CREATED:20241008T190007Z
LAST-MODIFIED:20241008T190007Z
UID:10001455-1728568800-1728572400@asrc.gc.cuny.edu
SUMMARY:Guest Speaker: Job Boekhoven\, PhD
DESCRIPTION:Regulating molecular assembly with chemical fuels—Spinning ribbons\, dissipative structures\, and an approach towards synthetic life \nJob Boekhoven\, PhD\nDepartment of Bioscience\, Technical University of Munich \nAbstract-Molecular self-assembly is the process in which molecules combine into superstructures held together through non-covalent interactions. Over the last decades\, supramolecular chemists have perfected this art\, and we can now create Gigadalton structures in which each atom is placed with angstrom precision. More importantly\, the unique properties of the emerging assemblies have found their way into everyday life\, like\, for example\, the liquid crystals in our displays. Nevertheless\, biology entirely overshadows us regarding assembly with molecular building blocks. Indeed\, the biological cell has the same molecular toolbox for creating structures; it also uses non-covalent interactions to hold molecules together. Biology uses another trick. Biological structures are governed not only by non-covalent interactions but also by reactions forming covalent ones. Arguably\, molecular self-assembly offers the structures; chemical reactions govern the dynamics and functions of these structures. Biological structures are sustained and regulated in the non-equilibrium regime through chemical reaction cycles that convert energy. The implications\, rules\, and mechanisms there are poorly understood. \nIn this lecture\, I will discuss my team’s effort to elucidate the rules of non-equilibrium self-assembly regulated by chemical reaction cycles. Next\, I will describe a simple yet versatile chemical reaction cycle that can be coupled to self-assembly to create chemically fueled assemblies. Finally\, I will highlight three recent examples of chemically fueled\, non-equilibrium assemblies with vastly different properties than their in-equilibrium counterparts—ribbons that spin spontaneously as they consume fuel and dissipative droplets that periodically form and dissolve when fueled continuously. I will close the lecture with our vision towards synthetic life. \nBio-Job Boekhoven is an Associate Professor at the Bioscience Department of the Technical University of Munich in Germany. He received his PhD in Chemistry under Prof. Jan van Esch and Prof. Rienk Eelkema from the TU Delft in 2012. After a postdoc at Northwestern University (2010-2013)\, he started his independent group in 2016 at the Institute for Advanced Study at the Technical University of Munich as a Rudolf Mössbauer Professor. His honors include an ERC Starting grant (2016) and an ERC Consolidator grant (2024). He has received the VCI – Dozentenpreis and is a Max Planck Fellow in the school Matter to Life. \nJob Boekhoven is developing tools to regulate the self-assembly of molecules the way biology does. He is best known for his work on chemically fueled reaction cycles that control the ability of molecules to assemble or phase separate. The resulting materials show exciting new properties\, such as their intrinsic ability to self-heal or their controllable lifetime. Moreover\, the chemically fueled assemblies manifest features we usually associate with living cells\, like the ability to emerge\, decay\, or even self-divide.
URL:https://asrc.gc.cuny.edu/event/guest-speaker-job-boekhoven-phd/
LOCATION:ASRC 5th Floor Data Visualization Room\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Nanoscience
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241014T100000
DTEND;TZID=America/New_York:20241014T110000
DTSTAMP:20260811T011108
CREATED:20240821T152558Z
LAST-MODIFIED:20240831T192413Z
UID:10001443-1728900000-1728903600@asrc.gc.cuny.edu
SUMMARY:Photonics Initiative Seminar: Yakir Hadad
DESCRIPTION:Exact formulation of the mutual particle-cavity dynamics and its use for the study of loss threshold phenomenon under magnetization\nAbstract – Light-matter interaction plays a pivotal role in pushing forward nanotechnology. A particularly important setup involves a resonating particle\, say an emitting molecule or a macroscopic quasi-statically resonating plasmonic or ferromagnetic sphere\, that is located inside a cavity. \nIn this work\, we provide an analytic formulation for the exact calculation of the mutual dynamics between a resonant particle and a rectangular cavity in which it is located. The particle is assumed to be small on the wavelength\, and thus\, its excitation is dominated by a dipolar response that can be described using the discrete dipole approximation and polarizability theory.  The dipolar response depends on the particle’s polarizability function which encapsulates the particle’s materials and geometry\, and on the local field acting on the particle. In principle\, the latter is nothing more than the backscattering of the particle field by the cavity walls.  However\, its derivation may be challenging since it involves a three-dimensional singularity subtraction of the Green’s function in the cavity and the Green’s function in the free space that are differently represented. In this work\, we discuss the use of a recursive ladder-type process involving alternative Green’s function representations to calculate the local field in a computationally efficient and numerically stable manner. Using this approach\, we solve exactly several strongly coupled particle-cavity systems and calculate the collective resonance frequencies of the system. \nAs a particularly interesting example\, we focus on the case when the plasmonic particle is subject to a static magnetic field\,  . In this case\, its gyrotropic response gives rise to non-reciprocal dynamics of the ambient surroundings.  This dynamics depends on the particle’s excitation\, which in turn depends on the gyrotropic material damping rate  . Thus\, intuitively speaking\, the heavier the gyrotropic material loss is\, the weaker the non-reciprocal response will be. This is indeed the case when the particle is located in free space. However\, when the gyrotropic particle is placed inside a cavity\, we show that the non-reciprocity measure is robust against material loss up to a specific loss threshold\,  that depends on the magnetic biasing . \nBio – Dr. Yakir Hadad received the B.Sc. and M.Sc. degrees (summa cum laude) in electrical and computer engineering from the Ben Gurion University of the Negev\, Be’er Sheva\, Israel\, in 2006 and 2008\, respectively\, and the Ph.D. degree in physical electronics from Tel Aviv University\, Tel Aviv\, Israel\, in 2014.\,From 2015 to 2017\, he was a Post-Doctoral Fellow with the Department of Electrical and Computer Engineering\, The University of Texas at Austin\, Austin\, TX\, USA. During recent years\, he also spent several periods as a Visiting Scientist with the FOM Institute Atomic and Molecular Physics (AMOLF)\, Amsterdam\, The Netherlands\, in Fall 2015\, and the University of Pennsylvania\, Philadelphia\, PA\, USA\, in Spring 2013 and in Summer 2018. In 2017\, he joined the Department of Physical Electronics\, Faculty of Engineering\, Tel Aviv University\, where he is currently an Associate Professor. His research interest spreads on a wide range of wave modeling problems as well as on analytical and semi-analytical methods in electromagnetics and acoustics\, with a particular emphasize on wave phenomena in complex media with applications in overcoming bounds of wave theory\, Dr. Hadad received the Felsen Award for Excellence in Electrodynamics from the European Association for Antennas and Propagation in 2016\, the 2017 recipient of the prestigious Alon Fellowship for Outstanding Young Faculty from the Israeli Council of Higher Education\, Listed in Tel-Aviv University Rector’s list for excellence in teaching\, and won the 2020 Krill Prize for excellence in research by the Wolf Foundation. \nThis is an in-person seminar. If you opt to join via zoom use meeting ID 837 9843 9863 Passcode 700331
URL:https://asrc.gc.cuny.edu/event/photonics-initiative-fall-2024-seminar-series-yakir-hadad/
LOCATION:ASRC Auditorium\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Photonics
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241016T113000
DTEND;TZID=America/New_York:20241016T130000
DTSTAMP:20260811T011108
CREATED:20241003T154033Z
LAST-MODIFIED:20241003T154044Z
UID:10001454-1729078200-1729083600@asrc.gc.cuny.edu
SUMMARY:Seminar in Biochemistry\, Biophysics\, and Biodesign
DESCRIPTION:Please use this link to access Zoom.
URL:https://asrc.gc.cuny.edu/event/seminar-in-biochemistry-biophysics-and-biodesign-2/
LOCATION:ASRC Auditorium\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Structural Biology
ATTACH;FMTTYPE=application/pdf:https://asrc.gc.cuny.edu/wp-content/uploads/media/event/seminar-in-biochemistry-biophysics-and-biodesign-2/Strader-Flyer.pdf
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241018T110000
DTEND;TZID=America/New_York:20241018T123000
DTSTAMP:20260811T011108
CREATED:20241009T141302Z
LAST-MODIFIED:20241009T141337Z
UID:10001457-1729249200-1729254600@asrc.gc.cuny.edu
SUMMARY:Guest Speaker: Tanja Weil\, PhD
DESCRIPTION:Synthesis of Interactive Peptide Nanostructures in Living Systems \nTanja Weil\, PhD \nMax Planck Institute for Polymer Research\, Germany \nAbstract- We explore controlled chemical reactions in complex living systems to generate drug molecules\, synthesize peptide nanofibers\, or build new cellular compartments. The introduction of bioresponsive groups enables us to control peptide self-assembly inside the living cell. These groups react in a controlled fashion with cellular stimuli\, including pH\, reactive oxygen species\, glutathione\, and light. The synthetic intracellular peptide nanostructures can interfere with cell respiration\, metabolism\, they can induce controlled cell death\, or activate T-cells. Additionally\, peptide nanostructures can be integrated into the extracellular matrix\, where they facilitate virus binding and enhance the uptake of viral vectors. To optimize the amphiphilic peptide sequences of self-assembling peptides with regard to their multiscale structure formation and bioactivity\, we employ data mining and machine learning tools. \n \nFigure 1. Bioresponsive caged peptide monomers enter living cells and undergo chemical transformations initiated by cellular stimuli and form supramolecular peptide nanofibers that can affect cellular processes. \n\nChagri\, S.; Ng\, D. Y. W.; Weil\, T. Nat. Rev. Chem. 2022\, 6\, 320–338.\nPieszka\, M.; Han\, S.; Volkmann\, C.; Graf\, R.; Lieberwirth\, I.; Landfester\, K.; Ng\, D. Y. W.; Weil\, T. J. Amer. Chem. Soc. 2020\, 142\, 37\, 15780–15789.\nZhou\, Z.; Maxeiner\, K.; Moscariello\, P; Xiang\, S.; Wu\, Y.; Ren\, Y.; Whitfield\, C. J.; Xu\, L.; Kaltbeitzel\, A.; Han\, S.; Mücke\, D.; Qi\, H.; Wagner\, M.; Kaiser\, U.; Landfester\, K.; Lieberwirth\, I.; Ng\, D. Y.W.; Weil\, T. J. Amer. Chem. Soc. 2022\, 144\, 27\, 12219–12228.\nRoth\, P.; Meyer\, R.; Harley\, I; Landfester\, K.; Lieberwirth\, I.; Wagner\, M.; Ng\, D. Y. W.; Weil\, T. Nat. Syn. 2023\, 2\, 980–988.\nKaygisiz\, K.; Rauch-Wirth\, L.; Dutta\, A.; Yu\, X. Q.; Nagata\, Y.; Bereau\, T.; Münch\, J.; Synatschke\, C. V.; Weil T. Nat. Commun. 2023\, 14\, 1\, 5121.\nRen\, Y.; Zhou\, Z.; Maxeiner\, K.; Kaltbeitzel\, A.; Harley\, I.; Xing\, J.; Wu\, Y.; Wagner\, W.; Landfester\, K.; Lieberwirth\, I.; Weil\, T.; Ng\, D. Y. W. 2024\, J. Amer. Chem. Soc. 146\, 17\, 11991.\n\nBio– Prof. Dr. Tanja Weil joined the Max Planck Society in 2017 as one of the directors of the Max Planck Institute for Polymer Research\, heading the division “Synthesis of Macromolecules”. She studied chemistry (1993–1998) at the TU Braunschweig (Germany) and the University of Bordeaux I (France) and completed her PhD at the MPI for Polymer Research under the supervision of K. Müllen. In 2003\, she received the Otto Hahn Medal of the Max Planck Society. From 2002 to 2008 she managed different leading positions at Merz Pharmaceuticals GmbH (Frankfurt) from Section Head Medicinal Chemistry to Director of Chemical Research and Development. In 2008 she accepted an Associate Professor position at the National University of Singapore. Tanja Weil joined Ulm University as Director of the Institute of Organic Chemistry III / Macromolecular Chemistry in 2010. She has received numerous competitive funding at both national and international level including a Synergy Grant of the European Research Council (ERC). She serves in many advisory boards and steering committees: she is a member of the senate of the German Research Foundation\, a member of the senate of the Leibniz Association and of the Leibniz evaluation panel. Tanja is an associate editor for JACS and a member of the editorial advisory board of ACS Nano. Her scientific interests focus on innovative synthesis concepts to achieve functional macromolecules and hybrid materials to solve current challenges in biomedicine and material science.
URL:https://asrc.gc.cuny.edu/event/guest-speaker-tanja-weil-phd/
LOCATION:ASRC Auditorium\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Nanoscience
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241021T100000
DTEND;TZID=America/New_York:20241021T120000
DTSTAMP:20260811T011108
CREATED:20240831T191933Z
LAST-MODIFIED:20241009T220559Z
UID:10001445-1729504800-1729512000@asrc.gc.cuny.edu
SUMMARY:Photonics Initiative Seminar: Giovanni Toso and Piero Angeletti
DESCRIPTION:Multi-Beam Antennas (MBAs) and Beam-Forming Networks (BFNs)\nAbstract – Distinguished Speakers Giovanni Toso and Piero Angeletti from European Space Agency\, Netherlands will present the state of the art and the on-going development in Multi-Beam Antennas (MBAs) and Beam-Forming Networks (BFNs). They find applications in several fields including communications\, remote sensing (e.g. radars\, radiometers\, etc.)\, electric surveillance and defense systems\, science (e.g. multibeam radio telescopes)\, RF navigation systems\, etc. They may be installed on board satellites\, airplanes\, trains\, buses\, cars etc. MBAs and BFNs are becoming also fundamental elements in emerging MIMO and 5G communications. The BFN plays an essential role in any antenna system relaying on a set of radiating elements to generate a beam. The lectures cover both theoretical and practical aspects for the following topics: \n\nOverview of systems applications\nMultibeam Antenna Architecture (based on Reflectors\, Arrays. Lenses)\nBeamforming Networks\n\nAnalogue BFNs (Corporate\, Blass\, Nolen\, Butler matrices\, Digital BFNs)\n\n\nOverview of some Operational Multibeam Antennas/BFNs\nOn-going European Developments\nCurrent Design and Technical Challenges\n\nBio – Giovanni Toso received the Laurea Degree (cum laude)\, the Ph.D. and the Post Doctoral Fellowship from the University of Florence\, Italy\, in 1992\, 1995 and 1999\, respectively. Since 2000\, he has been with the Antenna and Submillimeter Waves Section\, European Space Agency (ESA)\, European Space Research and Technology Centre (ESTEC)\, Noordwijk\, The Netherlands. He has been initiating several research and development activities on satellite antennas based on arrays\, reflectarrays\, discrete lenses\, and reflectors. Since 2010\, together with Dr. P. Angeletti\, he has been instructing short courses on Multibeam Antennas and Beamforming Networks during international conferences that have been attended by more than 1200 participants. He is the organizer of two EurAAP-ESoA Courses on Active Antennas and on Satellite Antennas. From January 2023 Giovanni Toso has been elevated to IEEE Fellow grade for contributions to multibeam antenna developments for satellite applications. G. Toso is a Distinguished Lecturer of the IEEE Antennas and Propagation Society and has coauthored about 20 ESA International Patents. \nPiero Angeletti (M’07) received the Laurea degree in electronics engineering from the University of Ancona\, Ancona\, Italy\, in 1996\, and the Ph.D. degree in electromagnetism from the University of Rome “La Sapienza\,” Rome\, Italy\, in 2010.\,His 15 years of experience in RF Systems engineering and technical management encompass conceptual/architectural design\, tradeoffs\, detailed design\, production\, integration\, and testing of satellite payloads and active antenna systems for commercial/military telecommunications and navigation (spanning all the operating bands and set of applications) as well as for multifunction RADARs and electronic counter measure systems. He is currently a Member of the Technical Staff with the European Space Research and Technology Centre (ESTEC)\, European Space Agency\, Noordwijk\, The Netherlands. He is with the RF Payload Systems Division\, ESA Technical and Quality Management Directorate\, which is responsible for RF space communication systems\, instrumentation\, subsystems\, equipment\, and technologies. In particular he oversees ESA R&D activities related to flexible satellite payloads\, RF front ends and on-board digital processors. He authored or coauthored over 150 technical reports\, book chapters\, and papers published in peer reviewed professional journals and international conference proceedings. \nThis is an in-person seminar. If you opt to join via zoom use meeting ID 878 4444 5479 Passcode 058517
URL:https://asrc.gc.cuny.edu/event/photonics-initiative-seminar-ieee/
LOCATION:ASRC Auditorium\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Photonics
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241025T150000
DTEND;TZID=America/New_York:20241025T170000
DTSTAMP:20260811T011108
CREATED:20240919T180225Z
LAST-MODIFIED:20241007T152610Z
UID:10001451-1729868400-1729875600@asrc.gc.cuny.edu
SUMMARY:Communicating Your Science Series Open House Event
DESCRIPTION:Join us for our rescheduled kickoff of our 2024/25 Communicating Your Science Series\, which helps CUNY STEM students\, postdocs and faculty bone up on their science communications skills. Sponsored by the CUNY ASRC IlluminationSpace Hub\, CUNYSciCom\, BRAINE and CUNY Women in STEM\, this open house event will showcase the resources CUNY offers to help you communicate your science to the public and across STEM disciplines. The new date is: \nFriday\, October 25\, 2024\, 3-5 PM \nAdvanced Science Research Center \n85 Saint Nicholas Terrace \nCafé & Auditorium \nNew York\, NY \n  \nEvent Features \n\nTabling Event – Meet the student-led organizations focused on science communications\nLightening Talks – Short talks by CUNY students across different STEM disciplines showcasing how they make their research accessible and exciting\nGC Resources – Representatives from the Teaching & Learning Center\, Career Planning & Professional Development\, Writing Center\, Library and CUNY ASRC IlluminationSpace will be on hand to discuss their resources\nTour – Take a tour of the ASRC’s facilities and the IlluminationSpace.\nSnacks & Beverage – There will be light fare.\n\nPlease register here for the October 4th Communicating Your Science event. \nFor more information\, contact Shawn Rhea at srhea@gc.cuny.edu
URL:https://asrc.gc.cuny.edu/event/communicating-your-science-series-open-house-event/
LOCATION:Advanced Science Research Center (ASRC)\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Environmental Sciences,Nanoscience,Neuroscience,Photonics,Structural Biology
ATTACH;FMTTYPE=image/jpeg:https://asrc.gc.cuny.edu/wp-content/uploads/media/event/communicating-your-science-series-open-house-event/CYS-Open-House-Invite.jpg
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241026T110000
DTEND;TZID=America/New_York:20241026T140000
DTSTAMP:20260811T011108
CREATED:20241021T172757Z
LAST-MODIFIED:20241021T172757Z
UID:10001300-1729940400-1729951200@asrc.gc.cuny.edu
SUMMARY:The Science of Forests
DESCRIPTION:Please use this link to RSVP.
URL:https://asrc.gc.cuny.edu/event/the-science-of-forests/
LOCATION:Advanced Science Research Center (ASRC)\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
ATTACH;FMTTYPE=application/pdf:https://asrc.gc.cuny.edu/wp-content/uploads/media/event/the-science-of-forests/City-of-Forest-Day.pdf
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241029T043000
DTEND;TZID=America/New_York:20241029T183000
DTSTAMP:20260811T011108
CREATED:20241021T172451Z
LAST-MODIFIED:20241023T170047Z
UID:10001459-1730176200-1730226600@asrc.gc.cuny.edu
SUMMARY:October Community Night
DESCRIPTION:Please use this link to RSVP.
URL:https://asrc.gc.cuny.edu/event/mad-scientist-community-night/
LOCATION:Advanced Science Research Center (ASRC)\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
ATTACH;FMTTYPE=image/jpeg:https://asrc.gc.cuny.edu/wp-content/uploads/media/event/mad-scientist-community-night/Mad-Scientist-Community-Night-2.jpg
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=America/New_York:20241030T113000
DTEND;TZID=America/New_York:20241030T130000
DTSTAMP:20260811T011108
CREATED:20241021T135934Z
LAST-MODIFIED:20241021T135934Z
UID:10001458-1730287800-1730293200@asrc.gc.cuny.edu
SUMMARY:Seminar in Biochemistry\, Biophysics\, and Biodesign
DESCRIPTION:Please use this link to access Zoom.
URL:https://asrc.gc.cuny.edu/event/seminar-in-biochemistry-biophysics-and-biodesign-4/
LOCATION:ASRC 5th Floor Data Visualization Room\, 85 St. Nicholas Terrace\, New York\, NY\, 10031\, United States
CATEGORIES:Structural Biology
ATTACH;FMTTYPE=application/pdf:https://asrc.gc.cuny.edu/wp-content/uploads/media/event/seminar-in-biochemistry-biophysics-and-biodesign-4/Scheuring-Flyer.pdf
END:VEVENT
END:VCALENDAR