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Unconventional light-induced states visualized by ultrafast electron diffraction and microscopy

Author(s)
Zong, Alfred; Kogar, Anshul; Gedik, Nuh
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Abstract
Exciting electrons in solids with intense light pulses offers the possibility of generating new states of matter through nonthermal means and controlling their macroscopic properties on femto- to picosecond time scales. One way to manipulate a solid is by altering its lattice structure, which often underlies the electronic, magnetic, and other phases. Here, we review how structures of solids are affected by photoexcitation and how their ultrafast dynamics are captured with time-resolved electron diffraction and microscopy. Specifically, we survey how a strong light pulse has been used to tailor the nonequilibrium characteristics to yield on-demand properties in various material classes. In the existing literature, four main routes have been exploited to control material structures: (1) phase competition, (2) electronic correlations, (3) excitation of coherent modes, and (4) defect generation. In this article, we discuss experiments relevant to all four schemes and finish by speculating about future directions.
Date issued
2021-08
URI
https://hdl.handle.net/1721.1/132728
Department
Massachusetts Institute of Technology. Department of Physics
Journal
MRS Bulletin
Publisher
Springer International Publishing
Citation
Zong, A., Kogar, A. & Gedik, N. Unconventional light-induced states visualized by ultrafast electron diffraction and microscopy. MRS Bulletin 46, 720–730 (2021)
Version: Author's final manuscript
ISSN
1938-1425
0883-7694

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