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Bio
A general goal of Atomic, Molecular, and Optical Physics is to interpret fundamental, quantum mechanical principles from light-matter interactions in isolated systems. My research is focused on probing and controlling quantum dynamics, specifically studying the evolution of photo-induced chemical processes in atomic, molecular, and nano systems as a function of time.
In atoms, one can directly measure correlations between multiple electrons and a single ionic core. For molecules, the dynamics of the individual atoms in the process must be considered, hence providing a means to test the limitations of the standard Born-Oppenheimer model for nonadiabatic transitions. Furthermore, weakly-bound nano systems add a new layer of complexity where individual atoms and molecules can interact with neighboring particles, bridging the gap between isolated and condensed systems.
With the development of ultrafast light sources, such as lab-based tabletop lasers and facility-based free-electron lasers (FELs), we can investigate inter- and intramolecular processes in the time domain, thus mapping out their dynamic evolution. In that regard, it is possible to “make a molecular movie” of the ultrafast reactions in cold, controlled quantum systems.
Overall, this type of research plays an integral role in understanding how charge and energy can be transferred in systems of varying sizes. In particular, a complete understanding of the mechanisms and timescales of a particular process can reveal how efficient it is in nature, which can have broad applications from donor-acceptor systems in organic semiconductors to radiation damage and radical formation in biological systems.
In atoms, one can directly measure correlations between multiple electrons and a single ionic core. For molecules, the dynamics of the individual atoms in the process must be considered, hence providing a means to test the limitations of the standard Born-Oppenheimer model for nonadiabatic transitions. Furthermore, weakly-bound nano systems add a new layer of complexity where individual atoms and molecules can interact with neighboring particles, bridging the gap between isolated and condensed systems.
With the development of ultrafast light sources, such as lab-based tabletop lasers and facility-based free-electron lasers (FELs), we can investigate inter- and intramolecular processes in the time domain, thus mapping out their dynamic evolution. In that regard, it is possible to “make a molecular movie” of the ultrafast reactions in cold, controlled quantum systems.
Overall, this type of research plays an integral role in understanding how charge and energy can be transferred in systems of varying sizes. In particular, a complete understanding of the mechanisms and timescales of a particular process can reveal how efficient it is in nature, which can have broad applications from donor-acceptor systems in organic semiconductors to radiation damage and radical formation in biological systems.
Research Interests
Papers共 77 篇Author StatisticsCo-AuthorSimilar Experts
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Aaron Ngai,Sebastian Hartweg,Jakob D. Asmussen,Bjoern Bastian,Matteo Bonanomi,Carlo Callegari,Miltcho Danailov,Michele di Fraia,Raimund Feifel, Sarang Dev Ganeshamandiram,Sivarama Krishnan,Aaron Laforge,Friedemann Landmesser,Ltaief Ben Ltaief,Moritz Michelbach,Nitish Pal,Oksana Plekan, Nicolas Rendler,Lorenzo Raimondi, Fabian Richter, Audrey Scognamiglio,Tobias Sixt,Richard J. Squibb,Katrin Dulitz,Frank Stienkemeier,Marcel Mudrich
SCIENTIFIC REPORTSno. 1 (2025)
Aaron Ngai,Sebastian Hartweg,Jakob D Asmussen, Björn Bastian,Matteo Bonanomi,Carlo Callegari,Miltcho Danailov,Michele di Fraia,Raimund Feifel, Sarang Dev Ganeshamandiram,Sivarama Krishnan,Aaron LaForge,Friedemann Landmesser,Ltaief Ben Ltaief,Moritz Michelbach,Nitish Pal,Oksana Plekan, Nicolas Rendler,Lorenzo Raimondi, Fabian Richter, Audrey Scognamiglio,Tobias Sixt,Richard J Squibb,Katrin Dulitz,Frank Stienkemeier,Marcel Mudrich
Scientific reportsno. 1 (2025): 3201-3201
Reports on progress in physics Physical Society (Great Britain)no. 12 (2024)
Nature Communicationsno. 1 (2024)
Siqi Li,Taran Driver,Philipp Rosenberger,Elio G. Champenois,Joseph Duris,Andre Al-Haddad,Vitali Averbukh,Jonathan C. T. Barnard,Nora Berrah,Christoph Bostedt,Philip H. Bucksbaum,Ryan N. Coffee,Louis F. DiMauro,Li Fang,Douglas Garratt,Averell Gatton,Zhaoheng Guo,Gregor Hartmann,Daniel Haxton,Wolfram Helml,Zhirong Huang,Aaron C. LaForge,Andrei Kamalov,Jonas Knurr,Ming-Fu Lin,Alberto A. Lutman,James P. MacArthur,Jon P. Marangos,Megan Nantel,Adi Natan,Razib Obaid,Jordan T. O'Neal,Niranjan H. Shivaram,Aviad Schori,Peter Walter,Anna Li Wang,Thomas J. A. Wolf,Zhen Zhang,Matthias F. Kling,Agostino Marinelli,James P. Cryan
Nature Physicsno. 8 (2022): 959-959
B. Langbehn,Y. Ovcharenko,A. Clark,M. Coreno,R. Cucini,A. Demidovich,M. Drabbels,P. Finetti,M. Di Fraia,L. Giannessi,C. Grazioli,D. Iablonskyi,A. C. LaForge,T. Nishiyama, V. Oliver Alvarez de Lara,C. Peltz,P. Piseri,O. Plekan,K. Sander,K. Ueda,T. Fennel,K. C. Prince,F. Stienkemeier,C. Callegari,T. Moeller,D. Rupp
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Author Statistics
#Papers: 77
#Citation: 1660
H-Index: 23
G-Index: 38
Sociability: 6
Diversity: 2
Activity: 22
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