Enhanced Exciton Delocalization in Organic Near‐Infrared Photodetectors via Solid Additive‐Mediated J‐Aggregation

J Jia‐Wei Qiao (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China) F Feng‐Zhe Cui (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China) W Wen‐Qing Zhang (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China) R Ruo‐Hua Gui (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China) Z Zhen Fu (School of Physics, State Key Laboratory of Crystal Materials) M Ming Sun P Peng Lu (The ZeoMat Group, Key Laboratory of Photoelectric Conversion and Utilization of Solar Energy, Qingdao New Energy Shandong Laboratory) H Hang Yin X Xiao‐Yan Du (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China) X Xiao‐Tao Hao (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan People's Republic of China)

Abstract

AbstractNear‐infrared organic photodetectors (NIR‐OPDs) have emerged as increasingly significant in optoelectronics, offering unparalleled advantages for applications in health monitoring and night vision. The development of self‐powered devices with low dark currents and enhanced NIR sensitivity involves complex engineering that requires careful material selection, defect state density control, and environmental consideration. In this study, an innovative approach is introduced that utilizes solid additive (DIB) to induce improvements in the J‐aggregation morphology and exciton delocalization in acceptor molecules. The goal is to broaden the response spectrum of the device and augment its detection capabilities. The key findings revealed that solid additive exhibit an electrostatic affinity for acceptors, which facilitates their orderly face‐to‐face stacking and controls the π–π stacking distance. These enhanced intermolecular interactions lead to the delocalization of electron–hole pairs, reduced exciton recombination, and increased charge separation efficiency. Consequently, the modified devices exhibited exceptional specific detectivity, exceeding 1014 Jones across the wavelength range of 695–860 nm, thereby establishing a new standard for NIR response in organic photodetection. Overall, this study successfully addressed the compatibility challenges associated with self‐powered NIR‐OPDs, thereby expanding their potential applications in various settings.

Article Details

Volume / Issue Vol. 37, Issue 12
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

J

Jia‐Wei Qiao

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China

F

Feng‐Zhe Cui

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China

W

Wen‐Qing Zhang

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China

R

Ruo‐Hua Gui

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China

Z

Zhen Fu

School of Physics, State Key Laboratory of Crystal Materials

M

Ming Sun

P

Peng Lu

The ZeoMat Group, Key Laboratory of Photoelectric Conversion and Utilization of Solar Energy, Qingdao New Energy Shandong Laboratory

H

Hang Yin

X

Xiao‐Yan Du

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China

X

Xiao‐Tao Hao

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan People's Republic of China