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导电混合有机晶体作为柔性光学波导。

Electrically conductive hybrid organic crystals as flexible optical waveguides.

机构信息

State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Changchun, 130012, P. R. China.

Smart Materials Lab, New York University Abu Dhabi, PO Box 129188, Abu Dhabi, UAE.

出版信息

Nat Commun. 2022 Dec 22;13(1):7874. doi: 10.1038/s41467-022-35432-w.

Abstract

Hybrid materials capitalize on the properties of individual materials to attain a specific combination of performance assets that is not available with the individual components alone. We describe a straightforward approach to preparation of sandwich-type hybrid dynamic materials that combine metals as electrically conductive components and polymers as bending, momentum-inducing components with flexible organic crystals as mechanically compliant and optically transducive medium. The resulting hybrid materials are conductive to both electricity and light, while they also respond to changes in temperature by deformation. Depending on the metal, their conductivity ranges from 7.9 to 21.0 S µm. The elements respond rapidly to temperature by curling or uncurling in about 0.2 s, which in one typical case corresponds to exceedingly fast deformation and recovery rates of 2187.5° s and 1458.3° s, respectively. In cyclic operation mode, their conductivity decreases less than 1% after 10,000 thermal cycles. The mechanothermal robustness and dual functionality favors these materials as candidates for a variety of applications in organic-based optics and electronics, and expands the prospects of application of organic crystals beyond the natural limits of their dynamic performance.

摘要

混合材料利用各材料的特性,获得仅靠单个组件无法实现的特定性能组合。我们描述了一种简单的制备三明治型混合动态材料的方法,该方法将金属作为导电组件,聚合物作为弯曲、产生动量的组件,以及柔性有机晶体作为机械顺应性和光转换的介质。所得混合材料对电和光均具有传导性,并且它们还可以通过变形响应温度的变化。根据金属的不同,其电导率范围为 7.9 至 21.0 S µm。这些元件通过卷曲或展开在大约 0.2 s 内快速响应温度,在一个典型的情况下,对应于非常快的变形和恢复速率,分别为 2187.5° s 和 1458.3° s。在循环工作模式下,经过 10000 次热循环后,其电导率下降小于 1%。这些材料的力学热稳定性和双重功能使其成为有机光学和电子学中各种应用的候选材料,并扩展了有机晶体应用的前景,超越了其动态性能的自然限制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d7a/9780324/229152579cbd/41467_2022_35432_Fig1_HTML.jpg

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