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Ultrafast Auger process in few-layer PtSe2

Authors
Shin, Hee JunBae, SeongkwangSim, Sangwan
Issue Date
Nov-2020
Publisher
ROYAL SOC CHEMISTRY
Citation
NANOSCALE, v.12, no.43, pp.22185 - 22191
Indexed
SCIE
SCOPUS
Journal Title
NANOSCALE
Volume
12
Number
43
Start Page
22185
End Page
22191
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/751
DOI
10.1039/d0nr05897a
ISSN
2040-3364
Abstract
Enhanced many-body interactions due to strong Coulomb interactions and quantum confinement are one of the most prominent features of two-dimensional systems. The Auger process is a representative many-body interaction typically observed in two-dimensional semiconductors, determining important physical properties of materials, such as carrier lifetime, photoconductivity, and emission quantum yield. Recently, platinum dichalcogenides, represented by PtSe2 and PtS2, have attracted great attention due to their superior air stability, thickness-dependent semimetal-to-semiconductor transition, and exotic magnetic characteristics. However, the Auger process in platinum dichalcogenides has not been investigated to date. Here, we utilized ultrafast optical-pump terahertz-probe spectroscopy to explore carrier dynamics in few-layer semiconducting PtSe2. Most of the excited carriers are trapped by defects within similar to 10 ps after excitation due to high defect density. We overcome this challenge by raising the excitation intensity to saturate trap sites with carriers, and observed a many-body process involving the carriers that survived the rapid trapping. This process is not band-to-band Auger recombination, but rather defect-assisted Auger recombination in which free carriers interact with trapped carriers at defects. Theoretical simulations show that this three-body Auger process can be approximated as bimolecular recombination at the rate of similar to 3.3 x 10(-3) cm(2) s(-1). This work provides insights into the interplay between ultrafast many-body processes and defects in two-dimensional semiconductors.
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ERICA 공학대학 (SCHOOL OF ELECTRICAL ENGINEERING)
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