Cargando…

Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime

Designing organic afterglow materials with a high efficiency and long lifetime is highly attractive but challenging because of the inherent competition between the luminescence efficiency and lifetime. Here, we propose a simple yet efficient strategy, namely fluorine-induced aggregate-interlocking (...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Hui, Li, Huanhuan, Gu, Jie, He, Fei, Peng, Hao, Tao, Ye, Tian, Dan, Yang, Qingqing, Li, Ping, Zheng, Chao, Huang, Wei, Chen, Runfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179499/
https://www.ncbi.nlm.nih.gov/pubmed/34163631
http://dx.doi.org/10.1039/d0sc06025a
_version_ 1783703795965886464
author Li, Hui
Li, Huanhuan
Gu, Jie
He, Fei
Peng, Hao
Tao, Ye
Tian, Dan
Yang, Qingqing
Li, Ping
Zheng, Chao
Huang, Wei
Chen, Runfeng
author_facet Li, Hui
Li, Huanhuan
Gu, Jie
He, Fei
Peng, Hao
Tao, Ye
Tian, Dan
Yang, Qingqing
Li, Ping
Zheng, Chao
Huang, Wei
Chen, Runfeng
author_sort Li, Hui
collection PubMed
description Designing organic afterglow materials with a high efficiency and long lifetime is highly attractive but challenging because of the inherent competition between the luminescence efficiency and lifetime. Here, we propose a simple yet efficient strategy, namely fluorine-induced aggregate-interlocking (FIAI), to realize both an enhanced efficiency and elongated lifetime of afterglow materials by stimulating the synergistic effects of the introduced fluorine atoms to efficiently promote intersystem crossing (ISC) and intermolecular non-covalent interactions for facilitating both the generation of triplet excitons and suppression of non-radiative decays. Thus, the fluorine-incorporated afterglow molecules exhibit greatly enhanced ISC with a rate constant up to 5.84 × 10(7) s(−1) and suppressed non-radiative decay down to 0.89 s(−1), resulting in efficient organic afterglow with a simultaneously improved efficiency up to 10.5% and a lifetime of 1.09 s. Moreover, accompanied by the efficient phosphorescence emission especially at cryogenic temperature, color-tunable afterglow was also observed at different temperatures. Therefore, tri-mode multiplexing encryption devices by combining lifetime, temperature and color, and visual temperature sensing were successfully established. The FIAI strategy by addressing fundamental issues of afterglow emission paves the way to develop high-performance organic afterglow materials, opening up a broad prospect of aggregated and excited state tuning of organic solids for emission lifetime-resolved applications.
format Online
Article
Text
id pubmed-8179499
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-81794992021-06-22 Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime Li, Hui Li, Huanhuan Gu, Jie He, Fei Peng, Hao Tao, Ye Tian, Dan Yang, Qingqing Li, Ping Zheng, Chao Huang, Wei Chen, Runfeng Chem Sci Chemistry Designing organic afterglow materials with a high efficiency and long lifetime is highly attractive but challenging because of the inherent competition between the luminescence efficiency and lifetime. Here, we propose a simple yet efficient strategy, namely fluorine-induced aggregate-interlocking (FIAI), to realize both an enhanced efficiency and elongated lifetime of afterglow materials by stimulating the synergistic effects of the introduced fluorine atoms to efficiently promote intersystem crossing (ISC) and intermolecular non-covalent interactions for facilitating both the generation of triplet excitons and suppression of non-radiative decays. Thus, the fluorine-incorporated afterglow molecules exhibit greatly enhanced ISC with a rate constant up to 5.84 × 10(7) s(−1) and suppressed non-radiative decay down to 0.89 s(−1), resulting in efficient organic afterglow with a simultaneously improved efficiency up to 10.5% and a lifetime of 1.09 s. Moreover, accompanied by the efficient phosphorescence emission especially at cryogenic temperature, color-tunable afterglow was also observed at different temperatures. Therefore, tri-mode multiplexing encryption devices by combining lifetime, temperature and color, and visual temperature sensing were successfully established. The FIAI strategy by addressing fundamental issues of afterglow emission paves the way to develop high-performance organic afterglow materials, opening up a broad prospect of aggregated and excited state tuning of organic solids for emission lifetime-resolved applications. The Royal Society of Chemistry 2021-01-12 /pmc/articles/PMC8179499/ /pubmed/34163631 http://dx.doi.org/10.1039/d0sc06025a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Li, Hui
Li, Huanhuan
Gu, Jie
He, Fei
Peng, Hao
Tao, Ye
Tian, Dan
Yang, Qingqing
Li, Ping
Zheng, Chao
Huang, Wei
Chen, Runfeng
Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime
title Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime
title_full Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime
title_fullStr Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime
title_full_unstemmed Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime
title_short Fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime
title_sort fluorine-induced aggregate-interlocking for color-tunable organic afterglow with a simultaneously improved efficiency and lifetime
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179499/
https://www.ncbi.nlm.nih.gov/pubmed/34163631
http://dx.doi.org/10.1039/d0sc06025a
work_keys_str_mv AT lihui fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT lihuanhuan fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT gujie fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT hefei fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT penghao fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT taoye fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT tiandan fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT yangqingqing fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT liping fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT zhengchao fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT huangwei fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime
AT chenrunfeng fluorineinducedaggregateinterlockingforcolortunableorganicafterglowwithasimultaneouslyimprovedefficiencyandlifetime