Interfacial Charge Flow Modulation of CaF <sub>2</sub> /CaAl <sub>12</sub> O <sub>19</sub> :Dy Heterojunctions for Enhanced Mechanoluminescence in Flexible Composites

B Birong Tian (National &amp; Local Joint Engineering Laboratory for Optical Conversion Materials and Technology Lanzhou University Lanzhou Gansu 730000 China) L Lusi Zhao (Engineering Research Center of Industrial Biocatalysis, Fujian Province Higher Education Institutes, Fujian Provincial Key Laboratory of Advanced Materials Oriented Chemical Engineering, College of Chemistry and Material Science) Y Yongsheng Wang (Division of Thoracic Tumor Multimodality Treatment Cancer Center, West China Hospital, Sichuan University) S Shaofan Fang (Shandong Laboratory of Advanced Materials and Green Manufacturing at Yantai Yantai China) X Xiao He S Shibiao Xie (National &amp; Local Joint Engineering Laboratory for Optical Conversion Materials and Technology Lanzhou University Lanzhou Gansu 730000 China) Z Zhibin Lu (State Key Laboratory of Solid Lubrication Lanzhou Institute of Chemical Physics) J Jiachi Zhang Z Zhaofeng Wang (Key Laboratory of Organic Integrated Circuit, Ministry of Education & Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, School of Science, Tianjin University)

Abstract

Abstract Mechanoluminescence (ML) flexible composites show broad application prospects in stretchable optoelectronics and wearable devices. However, challenges such as low brightness, inadequate repeatability, and restricted self‐recoverability hinder their practical use. Aiming to these issues, this work demonstrates the effectiveness of the heterojunction strategy on the interfacial triboelectricity‐induced ML in flexible composites. Herein, the typical interfacial triboelectricity‐dependent ML material of CaF 2 :Dy is in situ grown on the trap‐controlled ML material of CaAl 12 O 19 :Dy (CA 6 :Dy) because of their high crystal lattice matching ability. Compared with the single‐phase materials, the CaF 2 /CA 6 :0.06Dy heterojunctions exhibit outstanding ML performance in the flexible polydimethylsiloxane matrix, which can achieve repeatable ML for over 10 000 times with a self‐recovery degree of ca. 91.60%. The trap‐controlled mechanism and interfacial triboelectrification‐induced electron bombardment model are both responsible for the ML of CaF 2 /CA 6 :0.06Dy heterojunctions. Theoretical calculation results suggest that the construction of heterojunction interfaces via F─Al─O and F─Ca─O bonds can effectively prompt the charge flow from CA 6 to CaF 2 . This endows CaF 2 /CA 6 :0.06Dy with enhanced interfacial triboelectricity and enriched trap structure, leading to improved ML properties. This work confirms that rational heterojunction design can overcome the limitations of single‐phase materials in flexible matrices, offering a robust platform for the development of high‐performance and flexible ML materials.

Article Details

Volume / Issue Vol. 38, Issue 7
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

B

Birong Tian

National &amp; Local Joint Engineering Laboratory for Optical Conversion Materials and Technology Lanzhou University Lanzhou Gansu 730000 China

L

Lusi Zhao

Engineering Research Center of Industrial Biocatalysis, Fujian Province Higher Education Institutes, Fujian Provincial Key Laboratory of Advanced Materials Oriented Chemical Engineering, College of Chemistry and Material Science

Y

Yongsheng Wang

Division of Thoracic Tumor Multimodality Treatment Cancer Center, West China Hospital, Sichuan University

S

Shaofan Fang

Shandong Laboratory of Advanced Materials and Green Manufacturing at Yantai Yantai China

X

Xiao He

S

Shibiao Xie

National &amp; Local Joint Engineering Laboratory for Optical Conversion Materials and Technology Lanzhou University Lanzhou Gansu 730000 China

Z

Zhibin Lu

State Key Laboratory of Solid Lubrication Lanzhou Institute of Chemical Physics

J

Jiachi Zhang

Z

Zhaofeng Wang

Key Laboratory of Organic Integrated Circuit, Ministry of Education & Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, School of Science, Tianjin University