非常规发光大分子及其应用的最新进展

IF 5.1 1区 化学 Q1 POLYMER SCIENCE Macromolecules Pub Date : 2024-06-11 DOI:10.1021/acs.macromol.4c00186
Nan Jiang, Chang-Yi Zhu, Ke-Xin Li, Yan-Hong Xu* and Martin R. Bryce*, 
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引用次数: 0

摘要

传统的π-共轭发光大分子通常存在聚集淬灭(ACQ)和高细胞毒性问题,而且需要复杂的合成过程。相比之下,具有非共轭结构的非常规发光大分子(NCLMs)具有出色的生物相容性、易于制备、独特的发光特性,以及在光电子学、生物学和医学领域的新兴应用。目前,人们认为非共轭发光材料产生固有发光的原因是固态/聚集态中重叠电子轨道的空间共轭。然而,由于实验事实不断超出人们的预期,甚至推翻了之前的一些假设,关于 NCLMs 的详细发光机制仍存在争议,需要进行广泛的研究以进一步探索其机制。本视角重点介绍了 NCLMs 的最新进展,并从分子设计、机理探索、应用、挑战与前景等角度对这些进展进行了分类和总结。旨在为 NCLMs 巨大的基础和实用潜力提供指导和启发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Recent Progress in Nonconventional Luminescent Macromolecules and their Applications

Traditional π-conjugated luminescent macromolecules typically suffer from aggregation-caused quenching (ACQ) and high cytotoxicity, and they require complex synthetic processes. In contrast, nonconventional luminescent macromolecules (NCLMs) with nonconjugated structures possess excellent biocompatibility, ease of preparation, unique luminescence behavior, and emerging applications in optoelectronics, biology, and medicine. NCLMs are currently believed to produce inherent luminescence due to through-space conjugation of overlapping electron orbitals in solid/aggregate states. However, as experimental facts continue to exceed expectations or even overturn some previous assumptions, there is still controversy about the detailed luminous mechanism of NCLMs, and extensive studies are needed to further explore the mechanism. This Perspective highlights recent progress in NCLMs and classifies and summarizes these advances from the viewpoint of molecular design, mechanism exploration, applications, and challenges and prospects. The aim is to provide guidance and inspiration for the huge fundamental and practical potential of NCLMs.

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来源期刊
Macromolecules
Macromolecules 工程技术-高分子科学
CiteScore
9.30
自引率
16.40%
发文量
942
审稿时长
2 months
期刊介绍: Macromolecules publishes original, fundamental, and impactful research on all aspects of polymer science. Topics of interest include synthesis (e.g., controlled polymerizations, polymerization catalysis, post polymerization modification, new monomer structures and polymer architectures, and polymerization mechanisms/kinetics analysis); phase behavior, thermodynamics, dynamic, and ordering/disordering phenomena (e.g., self-assembly, gelation, crystallization, solution/melt/solid-state characteristics); structure and properties (e.g., mechanical and rheological properties, surface/interfacial characteristics, electronic and transport properties); new state of the art characterization (e.g., spectroscopy, scattering, microscopy, rheology), simulation (e.g., Monte Carlo, molecular dynamics, multi-scale/coarse-grained modeling), and theoretical methods. Renewable/sustainable polymers, polymer networks, responsive polymers, electro-, magneto- and opto-active macromolecules, inorganic polymers, charge-transporting polymers (ion-containing, semiconducting, and conducting), nanostructured polymers, and polymer composites are also of interest. Typical papers published in Macromolecules showcase important and innovative concepts, experimental methods/observations, and theoretical/computational approaches that demonstrate a fundamental advance in the understanding of polymers.
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