Aqueous Solution Enhanced Room Temperature Phosphorescence through Coordination‐Induced Structural Rigidity

Author:

Liang Li Ya1,Chen Bin Bin12ORCID,Gao Ya Ting1,Lv Jian1,Liu Meng Li23,Li Da Wei1ORCID

Affiliation:

1. Key Laboratory for Advanced Materials Shanghai Key Laboratory of Functional Materials Chemistry Frontiers Science Center for Materiobiology & Dynamic Chemistry School of Chemistry & Molecular Engineering East China University of Science and Technology Shanghai 200237 China

2. School of Science and Engineering Shenzhen Institute of Aggregate Science and Technology The Chinese University of Hong Kong Shenzhen (CUHK‐Shenzhen), 2001 Longxiang Boulevard, Longgang District Shenzhen City Guangdong 518172 China

3. Department of The Second Affiliated Hospital School of Medicine The Chinese University of Hong Kong Shenzhen (CUHK‐Shenzhen) Guangdong 518172 P. R. China

Abstract

AbstractAchieving aqueous solution enhanced room temperature phosphorescence (RTP) is critical for the applications of RTP materials in solution phase, but which faces a great challenge. Herein, for the first time, a strategy of coordination‐induced structural rigidity is proposed to achieve enhanced quantum efficiency of aluminum/scandium‐doped phosphorescent microcubes (Al/Sc‐PMCs) in aqueous solution. The Al/Sc‐PMCs in a dry state exhibit a nearly invisible blue RTP. However, they emit a strong RTP emission in aqueous solution with a RTP intensity increase of up to 22.16‐times, which is opposite to common solution‐quenched RTP. The RTP enhancement mechanism is attributed to the abundant metal sites (Al3+ and Sc3+ ions) on the Al/Sc‐PMCs surface that can tightly combine with water molecules through the strong coordination. Subsequently, these coordinated water molecules as the bridging agent can bind with surface groups by hydrogen bonding interaction, thereby rigidifying chemical groups and inhibiting their motions, resulting in the transition from the nonradiative decay to the radiative decay, which greatly enhances the RTP efficiency of the Al/Sc‐PMCs. This work not only develops a coordination rigidity strategy to enhance RTP intensity in aqueous solution, but also constructs a phosphorescent probe to achieve reliable and accurate determination of analyte in complex biological matrices.

Funder

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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