Self-indicating polymers: a pathway to intelligent materials

IF 40.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemical Society Reviews Pub Date : 2024-03-07 DOI:10.1039/D3CS00431G
Mobina Bayat, Hanieh Mardani, Hossein Roghani-Mamaqani and Richard Hoogenboom
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Abstract

Self-indicating polymers have emerged as a promising class of smart materials that possess the unique ability to undergo detectable variations in their physical or chemical properties in response to various stimuli. This article presents an overview of the most important mechanisms through which these materials exhibit self-indication, including aggregation, phase transition, covalent and non-covalent bond cleavage, isomerization, charge transfer, and energy transfer. Aggregation is a prevalent mechanism observed in self-indicating polymers, where changes in the degree of molecular organization result in variations in optical or electrical properties. Phase transition-induced self-indication relies on the transformation between different phases, such as liquid-to-solid or crystalline-to-amorphous transitions, leading to observable changes in color or conductivity. Covalent bond cleavage-based self-indicating polymers undergo controlled degradation or fragmentation upon exposure to specific triggers, resulting in noticeable variations in their structural or mechanical properties. Isomerization is another crucial mechanism exploited in self-indicating polymers, where the reversible transformation between the different isomeric forms induces detectable changes in fluorescence or absorption spectra. Charge transfer-based self-indicating polymers rely on the modulation of electron or hole transfer within the polymer backbone, manifesting as changes in electrical conductivity or redox properties. Energy transfer is an essential mechanism utilized by certain self-indicating polymers, where energy transfer between chromophores or fluorophores leads to variations in the emission characteristics. Furthermore, this review article highlights the diverse range of applications for self-indicating polymers. These materials find particular use in sensing and monitoring applications, where their responsive nature enables them to act as sensors for specific analytes, environmental parameters, or mechanical stress. Self-indicating polymers have also been used in the development of smart materials, including stimuli-responsive coatings, drug delivery systems, food sensors, wearable devices, and molecular switches. The unique combination of tunable properties and responsiveness makes self-indicating polymers highly promising for future advancements in the fields of biotechnology, materials science, and electronics.

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自指示聚合物:通往智能材料之路。
自指示聚合物是一类前景广阔的智能材料,具有独特的能力,能在各种刺激下发生可检测的物理或化学特性变化。本文概述了这些材料呈现自我指示的最重要机制,包括聚合、相变、共价键和非共价键裂解、异构化、电荷转移和能量转移。聚合是自我指示聚合物中常见的一种机制,分子组织程度的变化会导致光学或电学特性的变化。相变诱导的自我指示依赖于不同相之间的转变,如液态到固态或晶体到非晶态的转变,从而导致可观察到的颜色或电导率变化。共价键裂解型自指示聚合物在暴露于特定触发因素时会发生受控降解或碎裂,从而导致其结构或机械性能发生明显变化。异构化是自指示聚合物中利用的另一种重要机制,不同异构体之间的可逆转化可诱导荧光或吸收光谱发生可检测的变化。基于电荷转移的自指示聚合物依赖于聚合物骨架内电子或空穴传输的调节,表现为导电性或氧化还原特性的变化。能量转移是某些自指示聚合物利用的基本机制,发色团或荧光团之间的能量转移会导致发射特性的变化。此外,这篇综述文章还强调了自指示聚合物的多种应用。这些材料特别适用于传感和监测应用,其响应特性使其能够充当特定分析物、环境参数或机械应力的传感器。自指示聚合物还被用于开发智能材料,包括刺激响应涂层、给药系统、食品传感器、可穿戴设备和分子开关。可调特性与响应性的独特结合,使自指示聚合物在生物技术、材料科学和电子学领域的未来发展中大有可为。
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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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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