Photogated two conductive pathways of donor-acceptor Stenhouse adducts in single-molecule junctions

F Fanxi Sun S Shengqing Jiang H Hanjun Zhang R Rui Wang Y Yu Ji S Songjun Hou (Department of Physics) M Maolin Zhang G Gaolu Zhu T Tianfang Shi J Jiayu Li Y Yuantao Zheng W Wenshu Liu Y Yangyang Pan H Hao Luo X Xu Deng (Institute of Fundamental and Frontier Sciences) Y Yonghao Zheng C Chen Wei (Department of Mechanical and Aerospace Engineering, University of California Los Angeles) D Dongsheng Wang

Abstract

Abstract Manipulating intramolecular electron transportation can fundamentally modulate the optical property, electromagnetic behavior and chemical reactivity of molecules. Achieving simultaneous control of multiple ( ≥2) transport pathways within a single molecule, however, remains a significant challenge. Herein, we report light-gated modulation of two distinct conductive pathways in single donor-acceptor Stenhouse adduct (DASA) molecules using the scanning tunneling microscopy break-junction (STM-BJ) technique. The donor and π-bridge pathways are separately controlled by designing DASAs with two thiomethyl anchoring sites. In the donor pathway, a side-chain modulation mechanism operates, where linear -to- cyclic isomerization induces electronic redistribution and increases the conductivity. In contrast, the π-bridge pathway is governed by a main-chain modulation mechanism, in which deformation of the π-conjugated backbone decreases the conductivity. By synthesizing DASAs containing three thiomethyl anchoring sites, these two conductive pathways are integrated within a single-molecule junction and can be simultaneously modulated under 635 nm red-light irradiation and dark relaxation. The π-bridge transport in the linear state exhibits mixed through-bond and through-space character, while photoisomerization leads to an increased through-space contribution in the cyclic state driven by cyclopentenone formation. These results highlight DASAs’ potential in understanding molecular electronics and developing photoresponsive molecular-scale devices.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 16, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (18)

F

Fanxi Sun

S

Shengqing Jiang

H

Hanjun Zhang

R

Rui Wang

Y

Yu Ji

S

Songjun Hou

Department of Physics

M

Maolin Zhang

G

Gaolu Zhu

T

Tianfang Shi

J

Jiayu Li

Y

Yuantao Zheng

W

Wenshu Liu

Y

Yangyang Pan

H

Hao Luo

X

Xu Deng

Institute of Fundamental and Frontier Sciences

Y

Yonghao Zheng

C

Chen Wei

Department of Mechanical and Aerospace Engineering, University of California Los Angeles

D

Dongsheng Wang