Nanoscale Confined Tribo‐Ion‐Photonics for Ultrahigh‐Resolution Imaging

Z Ziyue Wang T Tianzhao Bu (Flexible Electronics Research Center, State Key Laboratory of Intelligent Manufacturing Equipment and Technology, School of Mechanical Science and Engineering, Huazhong University of Science and Technology) J Jie Cao R Ruifei Luan (Beijing Key Laboratory of Micro‐Nano Energy and Sensor, Center for High‐Entropy Energy and Systems, Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China) S Sicheng Dong (Beijing Key Laboratory of Micro‐Nano Energy and Sensor, Center for High‐Entropy Energy and Systems, Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China) Y Yuan Feng B Beibei Fan (Beijing Key Laboratory of Micro‐Nano Energy and Sensor, Center for High‐Entropy Energy and Systems, Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China) Z Zhichao Jiang (School of Mathematics) Z Zhong Lin Wang (Center for High-Entropy Energy and Systems) C Chi Zhang

Abstract

Abstract Interactive sensing displays with ultrahigh resolution are critically important for next‐generation human‐machine interfaces and near‐eye display technologies, yet their development has been hindered by fabrication and material limitations. Here, a nanoscale confined tribo‐ion‐photonic device has been proposed, consisting of a counterion‐electromigration‐confined ion‐gel, a poly(2,5‐bis(3‐alkylthiophen‐2‐yl)thieno[3,2‐b]thiophene) (PBTTT) active layer, and an electrode, which achieves ultrahigh spatial resolution through nanoscale‐triboelectrification‐tuned ion injection. The electrical conductivity and photoluminescence intensity of the PBTTT layer can be precisely modulated by scan force, scan rate, scan cycles, and applied bias of the atomic microscopy tip. The device exhibits excellent reversibility and a record‐breaking spatial resolution of 42333 pixels per inch. On the basis, patterns with fine structure are successfully written and stored in the device and can be instantaneously read out due to the electrochromic phenomenon even under ambient lighting conditions. This work established a novel approach to ultrahigh‐resolution imaging by combining triboelectricity with organic semiconductor devices, opening new possibilities for applications in visualized tactile imaging, polymer‐based nano‐optoelectronics, and nano‐opto‐electro‐mechanical systems.

Article Details

Volume / Issue Vol. 38, Issue 9
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

Z

Ziyue Wang

T

Tianzhao Bu

Flexible Electronics Research Center, State Key Laboratory of Intelligent Manufacturing Equipment and Technology, School of Mechanical Science and Engineering, Huazhong University of Science and Technology

J

Jie Cao

R

Ruifei Luan

Beijing Key Laboratory of Micro‐Nano Energy and Sensor, Center for High‐Entropy Energy and Systems, Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China

S

Sicheng Dong

Beijing Key Laboratory of Micro‐Nano Energy and Sensor, Center for High‐Entropy Energy and Systems, Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China

Y

Yuan Feng

B

Beibei Fan

Beijing Key Laboratory of Micro‐Nano Energy and Sensor, Center for High‐Entropy Energy and Systems, Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China

Z

Zhichao Jiang

School of Mathematics

Z

Zhong Lin Wang

Center for High-Entropy Energy and Systems

C

Chi Zhang