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      Multivalent supramolecular assembly with ultralong organic room temperature phosphorescence, high transfer efficiency and ultrahigh antenna effect in water†

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      Chemical Science
      The Royal Society of Chemistry

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          Abstract

          Multivalent supramolecular assemblies have recently attracted extensive attention in the applications of soft materials and cell imaging. Here, we report a novel multivalent supramolecular assembly constructed from 4-(4-bromophenyl)pyridine-1-ium bromide modified hyaluronic acid (HABr), cucurbit[8]uril (CB[8]) and laponite® clay (LP), which could emit purely organic room-temperature phosphorescence (RTP) with a phosphorescence lifetime of up to 4.79 ms in aqueous solution via multivalent supramolecular interactions. By doping the organic dyes rhodamine B (RhB) or sulfonated rhodamine 101 (SR101) into the HABr/CB[8]/LP assembly, phosphorescence energy transfer was realized with high transfer efficiency (energy transfer efficiency = 73–80%) and ultrahigh antenna effect (antenna effect value = 308–362) within the phosphorescent light harvesting system. Moreover, owing to the dynamic nature of the noncovalent interactions, a wide-range spectrum of phosphorescence energy transfer outputs could be obtained not only in water but also on filter paper and a glass plate by adjusting the donor–acceptor ratio and, importantly, white-light emission was obtained, which could be used in the application of information encryption.

          Abstract

          An ultralong lifetime supramolecular assembly was constructed via multivalent supramolecular interactions and achieved phosphorescence light harvesting. Multicolor (including white) broad-spectrum outputs could be achieved in water and also on filter paper and a glass plate.

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          Author and article information

          Journal
          Chem Sci
          Chem Sci
          SC
          CSHCBM
          Chemical Science
          The Royal Society of Chemistry
          2041-6520
          2041-6539
          24 November 2021
          5 January 2022
          24 November 2021
          : 13
          : 2
          : 573-579
          Affiliations
          [a] College of Chemistry, State Key Laboratory of Elemento–Organic Chemistry, Nankai University People’s Republic of China yuliu@ 123456nankai.edu.cn
          [b] College of Chemistry and Materials Science, Inner Mongolia Key Laboratory of Chemistry for Nature Products and Synthesis for Functional Molecules, Inner Mongolia Minzu University Tongliao 028000 People’s Republic of China
          Author information
          https://orcid.org/0000-0003-0967-0919
          Article
          d1sc05861d
          10.1039/d1sc05861d
          8730196
          35126989
          4e220008-4b8f-4854-939f-ddf600f9fa5a
          This journal is © The Royal Society of Chemistry
          History
          : 25 October 2021
          : 24 November 2021
          Page count
          Pages: 7
          Funding
          Funded by: National Natural Science Foundation of China, doi 10.13039/501100001809;
          Award ID: 22101143
          Award ID: 22131008
          Award ID: 21971127
          Funded by: China Postdoctoral Science Foundation, doi 10.13039/501100002858;
          Award ID: 2021M691661
          Funded by: Natural Science Foundation of Inner Mongolia, doi 10.13039/501100004763;
          Award ID: 2021BS02014
          Categories
          Chemistry
          Custom metadata
          Paginated Article

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