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Determination of the In-Plane Exciton Radius in 2D CdSe Nanoplatelets via Magneto-optical Spectroscopy
Author(s) -
Alexandra Brumberg,
Samantha M. Harvey,
John P. Philbin,
Benjamin T. Diroll,
Byeongdu Lee,
S. A. Crooker,
Michael R. Wasielewski,
Eran Rabani,
Richard D. Schaller
Publication year - 2019
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/acsnano.9b02008
Subject(s) - exciton , quantum dot , spectroscopy , materials science , diamagnetism , biexciton , condensed matter physics , monolayer , radius , dielectric , quantum well , semiconductor , absorption (acoustics) , absorption spectroscopy , molecular physics , magnetic field , nanotechnology , optoelectronics , chemistry , physics , optics , laser , computer security , quantum mechanics , computer science , composite material
Colloidal, two-dimensional semiconductor nanoplatelets (NPLs) exhibit quantum confinement in only one dimension, which results in an electronic structure that is significantly altered compared to that of other quantum-confined nanomaterials. Whereas it is often assumed that the lack of quantum confinement in the lateral plane yields a spatially extended exciton, reduced dielectric screening potentially challenges this picture. Here, we implement absorption spectroscopy in pulsed magnetic fields up to 60 T for three different CdSe NPL thicknesses and lateral areas. Based on diamagnetic shifts, we find that the exciton lateral extent is comparable to NPL thickness, indicating that the quantum confinement and reduced screening concomitant with few-monolayer thickness strongly reduces the exciton lateral extent. Atomistic electronic structure calculations of the exciton size for varying lengths, widths, and thicknesses support the substantially smaller in-plane exciton extent.

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