Evolution of organic phosphor through precision regulation of nonradiative decay

Author:

Ju Cheng-Wei1ORCID,Wang Xi-Chao1,Li Bo1,Ma Qiushi2,Shi Yuhao3,Zhang Jinyu1,Xu Yuzhi4,Peng Qian3,Zhao Dongbing1

Affiliation:

1. State Key Laboratory and Institute of Elemento-Organic Chemistry, College of Chemistry, Nankai University, Tianjin 300071, People’s Republic of China

2. Department of Chemistry, Marquette University, Milwaukee, WI 53233

3. School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing 100049, People’s Republic of China

4. Department of Chemistry, New York University, New York, NY 10003

Abstract

Development of single-component organic phosphor attracts increasing interest due to its wide applications in optoelectronic technologies. Theoretically, activating efficient intersystem crossing (ISC) via 1 (π, π*) to 3 (π, π*) transitions, rather than 1 (n, π*) → 3 (π, π*) transitions, is an alternative access to purely organic phosphors but remains challenging. Herein, we designed and successfully synthesized the sila-8-membered ring fused biaryl benzoskeleton by transition metal catalysis, which served as a new organic phosphor with efficient 1 (π, π*) to 3 (π, π*) ISC. We first found that such a compound exhibits a record-long phosphorescence lifetime of 6.5 s at low temperature for single-component organic systems. Then, we developed two strategies to tune their decay channels to evolve such nonemissive molecules into bright phosphors with elongated lifetimes at room temperature: 1) Physic-based design, where quantitative analyses of electron–phonon coupling led us to reveal and hinder the major nonradiative channels, thus lighted up room temperature phosphorescence (RTP) with a lifetime of 480 ms at 298 K; 2) chemical geometry-driven molecular engineering, where a geometry-based descriptor ΔΘ T1–S0S0 was developed for rational screening RTP candidates and further improved the RTP lifetime to 794 ms. This study clearly shows the power of interdiscipline among synthetic methodology, physics-based rational design, and computational modeling, which represents a paradigm for the development of an organic emitter.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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