Friction Tuning of Interlayer Exciton Recombination in Van der Waals Heterostructures

Z Zejun Sun (Department of Chemistry, National University of Singapore 2 Science Drive 3, Singapore 117542, Singapore) P Puyu Ge (State Key Laboratory of Traction Power School of Mechanical Engineering Southwest Jiaotong University Chengdu 610031 China) S Shihong Chen S Shuchun Huang H Haowen Xu C Chong Wang R Rui Han X Xiushuo Zhang H Huixian Liu (Key Laboratory of Precision and Intelligent Chemistry, Department of Polymer Science and Engineering) J Jianbin Luo L Linmao Qian J Junhui Sun (State Key Laboratory of Coordination Chemistry, Key Laboratory of Mesoscopic Chemistry of Ministry of Education, Jiangsu Key Laboratory of Clean Energy Catalysis and Intelligent Green Chemical Engineering, New Cornerstone Science Laboratory, School of Chemistry, Nanjing University 1 , Nanjing 210023,) D Dameng Liu H Huan Liu

Abstract

AbstractVan der Waals heterostructures combine low friction with excellent optoelectronic properties, making them suitable for opto‐nano‐electromechanical systems. While the long lifetime of interlayer excitons in these materials helps reduce energy loss, friction in mechanical systems is unavoidable and can shorten the exciton recombination lifetime, undermining the low‐friction benefits. Despite its importance, the fundamental mechanism underlying friction‐induced changes in exciton recombination remains unexplored, mainly due to the difficulty of probing long‐lifetime exciton recombination at friction interfaces. Here, time‐resolved photoluminescence combined with an atomic force microscope is used to detect exciton recombination at the friction interface of MoS2/WS2 heterostructures. The findings show that friction generates defects, which trap electrons and create additional recombination pathways, shortening exciton recombination lifetimes. This, in turn, increases friction by altering charge density evolution and raising the friction sliding barrier. Density functional theory calculations confirm this mechanism. These results reveal how friction influences exciton recombination, paving the way for advancements in low‐friction nano‐opto‐electromechanical devices.

Article Details

Volume / Issue Vol. 37, Issue 29
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

Z

Zejun Sun

Department of Chemistry, National University of Singapore 2 Science Drive 3, Singapore 117542, Singapore

P

Puyu Ge

State Key Laboratory of Traction Power School of Mechanical Engineering Southwest Jiaotong University Chengdu 610031 China

S

Shihong Chen

S

Shuchun Huang

H

Haowen Xu

C

Chong Wang

R

Rui Han

X

Xiushuo Zhang

H

Huixian Liu

Key Laboratory of Precision and Intelligent Chemistry, Department of Polymer Science and Engineering

J

Jianbin Luo

L

Linmao Qian

J

Junhui Sun

State Key Laboratory of Coordination Chemistry, Key Laboratory of Mesoscopic Chemistry of Ministry of Education, Jiangsu Key Laboratory of Clean Energy Catalysis and Intelligent Green Chemical Engineering, New Cornerstone Science Laboratory, School of Chemistry, Nanjing University 1 , Nanjing 210023,

D

Dameng Liu

H

Huan Liu