OAK

Optically Triggered Emergent Mesostructures in Monolayer WS2

Metadata Downloads
Abstract
The ultrahigh surface area of two-dimensional materials can drive multimodal coupling between optical, electrical, and mechanical properties that leads to emergent dynamical responses not possible in three-dimensional systems. We observed that optical excitation of the WS2 monolayer above the exciton energy creates symmetrically patterned mechanical protrusions which can be controlled by laser intensity and wavelength. This observed photostrictive behavior is attributed to lattice expansion due to the formation of polarons, which are charge carriers dressed by lattice vibrations. Scanning Kelvin probe force microscopy measurements and density functional theory calculations reveal unconventional charge transport properties such as the spatially and optical intensity-dependent conversion in the WS2 monolayer from apparent n- to p-type and the subsequent formation of effective p-n junctions at the boundaries between regions with different defect densities. The strong opto-electrical-mechanical coupling in the WS2 monolayer reveals previously unexplored properties, which can lead to new applications in optically driven ultrathin microactuators. © 2024 American Chemical Society.
Author(s)
Leem, Young-ChulFang, ZhenyaoLee, Yun-KyungKim, Na-YeongKakekhani, ArvinLiu, WenjingCho, Sung-PyoKim, CheolsuWang, YuhuiJi, ZhurunPatra, AbhirupKronik, LeeorRappe, Andrew M.Yim, Sang-YoupAgarwal, Ritesh
Issued Date
2024-04
Type
Article
DOI
10.1021/acs.nanolett.4c00358
URI
https://scholar.gist.ac.kr/handle/local/9618
Publisher
American Chemical Society
Citation
Nano Letters, v.24, no.18, pp.5436 - 5443
ISSN
1530-6984
Appears in Collections:
ETC > 1. Journal Articles
공개 및 라이선스
  • 공개 구분공개
파일 목록
  • 관련 파일이 존재하지 않습니다.

Items in Repository are protected by copyright, with all rights reserved, unless otherwise indicated.