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光、力和热:揭示其暴力过去的多刺激复合材料。

Light, Force, and Heat: A Multi-Stimuli Composite that Reveals its Violent Past.

机构信息

Institute for Materials Science, Functional Nanomaterials, Kiel University , Kaiserstr. 2, D-24143 Kiel, Germany.

Otto-Diels-Institute for Organic Chemistry, Kiel University , Otto-Hahn-Platz 4, D-24118 Kiel, Germany.

出版信息

ACS Appl Mater Interfaces. 2017 Nov 1;9(43):38000-38007. doi: 10.1021/acsami.7b09598. Epub 2017 Oct 19.

Abstract

A self-reporting polythiourethane/tetrapodal-ZnO (PTU/T-ZnO) composite is produced using spiropyran as an additive at a concentration as low as 0.5 wt %. Exposure to heat, UV light and mechanical force caused the spiropyran to undergo reversible isomerization indicated by a reversible color change. The studies have been conducted with a constant spiropyran concentration at 0.5 wt %, meanwhile varying the T-ZnO concentration from 0 to 7.5 wt %. The tetrapodal ZnO served as a prism: the light scattering effect of T-ZnO created a visual impression of uniform color distribution. The interconnected network of the tetrapodal of ZnO embedded in the PTU matrix enhanced the mechanical stability of the polymer leading to high impact resistance up to ∼232 kPa. PTU/spiropyran also emerged as a possible thermal sensing coating, due to its temperature sensitivity. Due to the broad green luminescence band (∼535 nm) in T-ZnO, the colored merocyanine form which absorbs in this region of the spectrum switches back to spiropyran at this wavelength. High concentrations of T-ZnO were shown to reduce the effect one of the switching triggers i.e., ultraviolet light. Using this property of T-ZnO it was possible to achieve a switchable system with the possibility of separating the stimuli.

摘要

采用螺吡喃作为添加剂,在浓度低至 0.5wt%的情况下制备了自报告型聚硫尿/四足-ZnO(PTU/T-ZnO)复合材料。热、紫外光和机械力的作用使螺吡喃发生可逆异构化,表现为颜色的可逆变化。该研究在固定螺吡喃浓度为 0.5wt%的情况下进行,同时将 T-ZnO 浓度从 0 变化到 7.5wt%。四足 ZnO 充当棱镜:T-ZnO 的光散射效应产生了均匀颜色分布的视觉印象。嵌入 PTU 基质中的四足 ZnO 的互联网络增强了聚合物的机械稳定性,从而具有高达约 232kPa 的高抗冲击性。PTU/螺吡喃也因其温度敏感性而成为一种潜在的热感测涂层。由于 T-ZnO 具有较宽的绿光发射带(约 535nm),在该光谱区域吸收的有色硫堇形式在该波长下会重新转变为螺吡喃。高浓度的 T-ZnO 被证明会降低其中一种开关触发因素(即紫外线)的作用。利用 T-ZnO 的这一特性,有可能实现一种可切换的系统,并有可能对刺激因素进行分离。

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