N─B─N Isomer Induced Room Temperature Phosphorescence: Expression, Mechanistic Insights, and Multi‐Level Anti‐Counterfeiting Applications

J Jianhua Liu J Junxiong Yao (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China) R Ruping Mu (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China) X Xinyi Mao (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China) H Haihua Li (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China) J Jianqi Sun (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China) J Jifeng Huang (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China) Q Qiang Feng (Department of Biomedical Engineering) X Xiaohua Cao (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China) J Jianguo Wang (School of Chemistry and Chemical Engineering) H Huanan Huang (College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China)

Abstract

Abstract Achieving pure organic room temperature phosphorescence (RTP) materials is of great interest due to their applications in optoelectronics. However, improving RTP in pure organic materials by controlling triplet excitons is challenging due to their complex relaxation processes. Therefore, exploring effective strategies to modulate triplet excitons is crucial. Herein, we propose a N─B─N isomerization strategy to enhance RTP performance. Two isomers containing HN─B─NH units (B 2 {1,2‐(NH) 2 C 6 H 4 } 2 ), namely 1,1‐DB and 1,2‐DB, were synthesized to explore their RTP properties. Intriguingly, 1,1‐DB exhibited excellent RTP, whereas 1,2‐DB displayed negligible phosphorescence. The N─B─N unit in 1,1‐DB optimizes molecular configuration and interactions, enhancing electron delocalization and stabilizing triplet excitons, which improves intersystem crossing (ISC) and spin‐orbit coupling (SOC) while reducing nonradiative decay, thus enabling RTP. Additionally, based on phosphorescence resonance energy transfer, multicolor afterglows were achieved by doping fluorescein into 1,1‐DB. This work not only provides a new class of RTP materials but also offers valuable insights for the discovery and optimization of rational designs in RTP materials, potentially triggering the exploration of new functions and properties within boron‐nitrogen molecular systems.

Article Details

Volume / Issue Vol. 64, Issue 34
Published August 18, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

J

Jianhua Liu

J

Junxiong Yao

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China

R

Ruping Mu

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China

X

Xinyi Mao

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China

H

Haihua Li

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China

J

Jianqi Sun

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China

J

Jifeng Huang

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China

Q

Qiang Feng

Department of Biomedical Engineering

X

Xiaohua Cao

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China

J

Jianguo Wang

School of Chemistry and Chemical Engineering

H

Huanan Huang

College of Chemistry and Chemical Engineering; Jiangxi Province Engineering Research Center of Ecological Chemical Industry Jiujiang University Jiujiang 332005 China