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基于纤维素纳米晶体的形状记忆聚合物的机械响应圆偏振发光

Mechanically Responsive Circularly Polarized Luminescence from Cellulose-Nanocrystal-Based Shape-Memory Polymers.

作者信息

Xu Mingcong, Xu Zhen, Soto Miguel A, Xu Yi-Tao, Hamad Wadood Y, MacLachlan Mark J

机构信息

Department of Chemistry, University of British Columbia, 2036 Main Mall, Vancouver, BC, V6T 1Z1, Canada.

Key Laboratory of Bio-based Material Science and Technology of Ministry of Education, Northeast Forestry University, No. 26 Hexing Road, Harbin, 150040, P. R. China.

出版信息

Adv Mater. 2023 Jul;35(29):e2301060. doi: 10.1002/adma.202301060. Epub 2023 May 31.

Abstract

Stimulus-responsive materials that display circularly polarized luminescence (CPL) have attracted great attention for application in chiral sensors and smart displays. However, due to difficulties in the regulation of chiral structures, fine control of CPL remains a challenge. Here, it is demonstrated that cellulose nanocrystal shape-memory polymers (CNC-SMPs) with luminescent components enable mechanically responsive CPL. The chiral nematic organization of CNCs in the material gives rise to a photonic bandgap. By manipulating the photonic bandgap or luminescence wavelengths of the luminescent CNC-SMPs, precise control of CPL emission with varied wavelengths and high dissymmetry factors (g ) is achieved. Specifically, CPL emission can be switched reversibly by treating the luminescent CNC-SMPs with hot-pressing and recovery by heating. Pressure-responsive CPL with tunable g values is ascribed to the pressure-responsive photonic bandgaps. Moreover, colorimetric and CPL-active patterns are created by imprinting desired forms into SMP samples. This study demonstrates a novel way to fabricate smart CPL systems using biomaterials.

摘要

具有圆偏振发光(CPL)特性的刺激响应材料在 chiral 传感器和智能显示器中的应用引起了广泛关注。然而,由于手性结构调控困难,对 CPL 的精细控制仍然是一个挑战。在此,证明了具有发光成分的纤维素纳米晶形状记忆聚合物(CNC-SMPs)能够实现机械响应性 CPL。材料中 CNCs 的手性向列组织产生了光子带隙。通过操纵发光 CNC-SMPs 的光子带隙或发光波长,可以实现对具有不同波长和高不对称因子(g)的 CPL 发射的精确控制。具体而言,通过对发光 CNC-SMPs 进行热压处理,CPL 发射可以可逆切换,并通过加热恢复。具有可调 g 值的压力响应性 CPL 归因于压力响应性光子带隙。此外,通过将所需形状压印到 SMP 样品中,可以创建比色和 CPL 活性图案。这项研究展示了一种使用生物材料制造智能 CPL 系统的新方法。

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