OAK

Reliable Piezoelectricity in Bilayer WSe2 for Piezoelectric Nanogenerators

Metadata Downloads
Abstract
Recently, piezoelectricity has been observed in 2D atomically thin materials, such as hexagonal-boron nitride, graphene, and transition metal dichalcogenides (TMDs). Specifically, exfoliated monolayer MoS2 exhibits a high piezoelectricity that is comparable to that of traditional piezoelectric materials. However, monolayer TMD materials are not regarded as suitable for actual piezoelectric devices due to their insufficient mechanical durability for sustained operation while Bernal-stacked bilayer TMD materials lose noncentrosymmetry and consequently piezoelectricity. Here, it is shown that WSe2 bilayers fabricated via turbostratic stacking have reliable piezoelectric properties that cannot be obtained from a mechanically exfoliated WSe2 bilayer with Bernal stacking. Turbostratic stacking refers to the transfer of each chemical vapor deposition (CVD)-grown WSe2 monolayer to allow for an increase in degrees of freedom in the bilayer symmetry, leading to noncentrosymmetry in the bilayers. In contrast, CVD-grown WSe2 bilayers exhibit very weak piezoelectricity because of the energetics and crystallographic orientation. The flexible piezoelectric WSe2 bilayers exhibit a prominent mechanical durability of up to 0.95% of strain as well as reliable energy harvesting performance, which is adequate to drive a small liquid crystal display without external energy sources, in contrast to monolayer WSe2 for which the device performance becomes degraded above a strain of 0.63%.
Author(s)
Lee, Ju-HyuckPark, Jae YoungCho, Eun BiKim, Tae YunHan, Sang A.Kim, Tae-HoLiu, YananKim, Sung KyunRoh, Chang JaeYoon, Hong-JoonRyu, HanjunSeung, WanchulLee, Jong SeokLee, JaichanKim, Sang-Woo
Issued Date
2017-08
Type
Article
DOI
10.1002/adma.201606667
URI
https://scholar.gist.ac.kr/handle/local/13663
Publisher
United Nations Industrial Developement Organization
Citation
Advanced Materials, v.29, no.29
ISSN
0935-9648
Appears in Collections:
Department of Physics and Photon Science > 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.