Hot Electron Cooling in <i>n</i>-Doped Colloidal Nanoplatelets Following Near-Infrared Intersubband Excitation.
basic_science · Level V
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- Record sourced from PubMed, PMID 39158185.
- Also identified by DOI 10.1021/acs.nanolett.4c03290.
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Abstract
Intersubband transition was recently discovered in colloidal nanoplatelets, but the associated intersubband carrier relaxation dynamics remains poorly understood. In particular, it is crucial to selectively excite the intersubband transition and to follow the hot electron dynamics in the absence of valence-band holes. This is achieved herein by exciting the predoped electrons in CdSe/ZnS nanoplatelets using near-infrared femtosecond pulses and monitoring nonequilibrium electron dynamics using broad-band visible pulses. We find that the <i>n</i> = 2 electrons relax to the <i>n</i> = 1 subband and establish a Fermi-Dirac distribution within 200 fs, and finally reach an equilibrium with the lattice within a few ps. The cooling dynamics depend mainly on the excitation fluence but weakly on the doping density and the lattice temperature. These characteristics are well captured by our numerical simulation that explicitly accounts for the state occupation effect and optical phonon scattering.