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用于坚韧压电弹性体的分子项链状聚轮烷各向异性晶体结构的优化

Optimization of Anisotropic Crystalline Structure of Molecular Necklace-like Polyrotaxane for Tough Piezoelectric Elastomer.

作者信息

Seo Jiae, Kim Bitgaram, Kim Min-Seok, Seo Ji-Hun

机构信息

Department of Materials Science and Engineering, Korea University, 145, Anam-ro, Seongbuk-gu, Seoul 02841, Republic of Korea.

Advanced Material Research Division, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea.

出版信息

ACS Macro Lett. 2021 Nov 16;10(11):1371-1376. doi: 10.1021/acsmacrolett.1c00567. Epub 2021 Oct 19.

Abstract

While piezoelectric materials are applied in various fields, they generally exhibit poor mechanical toughness. To increase the applicability of these, their mechanical properties need to be improved. In this study, a tough piezoelectric polyrotaxane (PRX) elastomer was developed by blending PRX samples of two different lengths, formed using 10K and 35K poly(ethylene glycol), to align dipole moments for optimization of the piezoelectricity characteristics. The effects of the blending ratio on the crystalline structure of the obtained PRX elastomer were investigated by X-ray diffraction analysis and transmission electron microscopy. In addition, the ferroelectric and piezoelectric properties of the PRX elastomer were evaluated based on its polarization hysteresis loop and voltage generation characteristics, respectively. The PRX elastomer formed by using a ratio of 3:1 (ePR10k35k) exhibited a long-range-ordered anisotropic crystalline structure, resulting in a large polarization () value. As a result, ePR10k35k showed greatly enhanced piezosensitivity against the mechanical vibrations generated by respiratory signals.

摘要

虽然压电材料在各个领域都有应用,但它们通常表现出较差的机械韧性。为了提高这些材料的适用性,需要改善它们的机械性能。在本研究中,通过将使用10K和35K聚乙二醇形成的两种不同长度的聚轮烷(PRX)样品混合,开发出一种坚韧的压电聚轮烷(PRX)弹性体,以对齐偶极矩来优化压电特性。通过X射线衍射分析和透射电子显微镜研究了混合比例对所得PRX弹性体晶体结构的影响。此外,分别基于其极化滞后回线和电压产生特性评估了PRX弹性体的铁电和压电性能。以3:1的比例形成的PRX弹性体(ePR10k35k)表现出长程有序的各向异性晶体结构,从而产生较大的极化()值。结果,ePR10k35k对呼吸信号产生的机械振动表现出大大增强的压敏性。

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