TY - JOUR
T1 - Ultrafast electron microscopy of nanoscale charge dynamics in semiconductors
AU - Yannai, Michael
AU - Dahan, Raphael
AU - Gorlach, Alexey
AU - Adiv, Yuval
AU - Wang, Kangpeng
AU - Madan, Ivan
AU - Gargiulo, Simone
AU - Barantani, Francesco
AU - Dias, Eduardo J. C.
AU - Vanacore, Giovanni Maria
AU - Rivera, Nicholas
AU - Carbone, Fabrizio
AU - Abajo, F. Javier García de
AU - Kaminer, Ido Efraim
PY - 2023/2/28
Y1 - 2023/2/28
N2 - The ultrafast dynamics of charge carriers in solids plays a pivotal role in emerging optoelectronics, photonics, energy harvesting, and quantum technology applications. However, the investigation and direct visualization of such nonequilibrium phenomena remains as a long-standing challenge, owing to the nanometer-femtosecond spatiotemporal scales at which the charge carriers evolve. Here, we propose and demonstrate an interaction mechanism enabling nanoscale imaging of the femtosecond dynamics of charge carriers in solids. This imaging modality, which we name charge dynamics electron microscopy (CDEM), exploits the strong interaction of free-electron pulses with terahertz (THz) near fields produced by the moving charges in an ultrafast scanning transmission electron microscope. The measured free-electron energy at different spatiotemporal coordinates allows us to directly retrieve the THz near-field amplitude and phase, from which we reconstruct movies of the generated charges by comparison to microscopic theory. The CDEM technique thus allows us to investigate previously inaccessible spatiotemporal regimes of charge dynamics in solids, providing insight into the photo-Dember effect and showing oscillations of photogenerated electron-hole distributions inside a semiconductor. Our work facilitates the exploration of a wide range of previously inaccessible charge-transport phenomena in condensed matter using ultrafast electron microscopy.
AB - The ultrafast dynamics of charge carriers in solids plays a pivotal role in emerging optoelectronics, photonics, energy harvesting, and quantum technology applications. However, the investigation and direct visualization of such nonequilibrium phenomena remains as a long-standing challenge, owing to the nanometer-femtosecond spatiotemporal scales at which the charge carriers evolve. Here, we propose and demonstrate an interaction mechanism enabling nanoscale imaging of the femtosecond dynamics of charge carriers in solids. This imaging modality, which we name charge dynamics electron microscopy (CDEM), exploits the strong interaction of free-electron pulses with terahertz (THz) near fields produced by the moving charges in an ultrafast scanning transmission electron microscope. The measured free-electron energy at different spatiotemporal coordinates allows us to directly retrieve the THz near-field amplitude and phase, from which we reconstruct movies of the generated charges by comparison to microscopic theory. The CDEM technique thus allows us to investigate previously inaccessible spatiotemporal regimes of charge dynamics in solids, providing insight into the photo-Dember effect and showing oscillations of photogenerated electron-hole distributions inside a semiconductor. Our work facilitates the exploration of a wide range of previously inaccessible charge-transport phenomena in condensed matter using ultrafast electron microscopy.
KW - Dember effect
KW - electron−hole dynamics
KW - terahertz emission
KW - terahertz near field imaging
KW - terahertz spectroscopy
KW - ultrafast charge transport
KW - ultrafast electron microscopy
U2 - 10.1021/acsnano.2c10481
DO - 10.1021/acsnano.2c10481
M3 - Journal article
C2 - 36736033
SN - 1936-0851
VL - 17
SP - 3645
EP - 3656
JO - ACS Nano
JF - ACS Nano
IS - 4
ER -