Triple Matrix Confinement‐Induced Ultrabright Afterglow From Carbon Dots With Multivariate Responsive Afterglow Colors for Advanced Dynamic Information Encryption

Y Yupeng Liu Y Yiming Hao (Department of Physics and Chemistry Faculty of Science and Technology University of Macau Taipa Macau SAR China) Y Yi Li X Xiaofan Xia (State Centre for International Cooperation on Designer Low‐Carbon & Environmental Materials School of Materials Science and Engineering Zhengzhou University Zhengzhou China) X Xichang Ou (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou China) X Xue Wu J Jun Wu R Ruifeng Zheng (Institute of Applied Physics and Materials Engineering) D Dongbo Guo (State Key Laboratory of Digital Medical Engineering School of Biomedical Engineering Sanya Research Institute of Hainan University Hainan University Sanya China) S Shi Chen J Jing Li J Jinyang Zhu Q Qijun Li (School of Chemistry, Dalian University of Technology, No. 2 Linggong Rd., 116024 Dalian, Liaoning, China) S Songnan Qu

Abstract

ABSTRACT Dynamic afterglow carbon dots (CDs) materials, capable of long‐duration emission and dynamic color changes after excitation, hold promise for widespread applications in high‐level encryption and visual sensing. However, the single‐variable response afterglow color changing limits the potential of CDs for multidimensional information encoding and dynamic encryption in complex environments. Here, we report metal‐free CDs with triple‐variable responses (time, temperature, and excitation wavelength) for multiple dynamic afterglow colors and an ultra‐high afterglow brightness (406 cd m −2 ) far exceeding those of other afterglow materials. Based on the synergistic effect of triple matrix confinement and interface effects, room‑temperature phosphorescence (RTP) and thermally activated delayed fluorescence (TADF) are integrated into a single CD system. Owing to the different lifetimes of the dual‐mode afterglow (phosphorescence and TADF) and their varying sensitivities to temperature and excitation wavelength, time‐dependent afterglow colors (TDAC), excitation‐dependent afterglow colors (EDAC), and thermochromic afterglow (TCAG) are simultaneously achieved. Finally, we also designed a three‐dimensional variable‐response color code that varies with time, temperature, and excitation wavelength, spanning the entire visible spectrum. This platform enables high‐capacity, programmable, full‐gamut, and visually intuitive information encryption and display, providing a promising pathway for advanced, multidimensional anti‐counterfeiting and secure communication technologies.

Article Details

Volume / Issue Vol. 65, Issue 16
Published April 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

Y

Yupeng Liu

Y

Yiming Hao

Department of Physics and Chemistry Faculty of Science and Technology University of Macau Taipa Macau SAR China

Y

Yi Li

X

Xiaofan Xia

State Centre for International Cooperation on Designer Low‐Carbon & Environmental Materials School of Materials Science and Engineering Zhengzhou University Zhengzhou China

X

Xichang Ou

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou China

X

Xue Wu

J

Jun Wu

R

Ruifeng Zheng

Institute of Applied Physics and Materials Engineering

D

Dongbo Guo

State Key Laboratory of Digital Medical Engineering School of Biomedical Engineering Sanya Research Institute of Hainan University Hainan University Sanya China

S

Shi Chen

J

Jing Li

J

Jinyang Zhu

Q

Qijun Li

School of Chemistry, Dalian University of Technology, No. 2 Linggong Rd., 116024 Dalian, Liaoning, China

S

Songnan Qu