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用于能量收集的沉淀印刷高β相聚偏二氟乙烯

Precipitation-Printed High-β Phase Poly(vinylidene fluoride) for Energy Harvesting.

作者信息

Tu Ruowen, Sprague Ethan, Sodano Henry A

机构信息

Department of Aerospace Engineering, University of Michigan, Ann Arbor, Michigan 48109, United States.

Department of Material Science and Engineering, University of Michigan, Ann Arbor, Michigan 48109, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Dec 30;12(52):58072-58081. doi: 10.1021/acsami.0c16207. Epub 2020 Dec 15.

DOI:10.1021/acsami.0c16207
PMID:33320534
Abstract

Poly(vinylidene fluoride) (PVDF) possesses outstanding piezoelectric properties, which allows it to be utilized as a functional material. Being a semicrystalline polymer, enhancing the piezoelectric properties of PVDF through the promotion of the polar β phase is a key research focus. In this research, precipitation printing is demonstrated as a scalable and tailorable approach to additively manufacture complex and bulk 3D piezoelectric energy harvesters with high-β phase PVDF. The β-phase fraction of PVDF is improved to 60% through precipitation printing, yielding more than 200% improvement relative to solvent-cast PVDF films. Once the precipitation-printed PVDF is hot-pressed to reduce internal porosity, a significant ferroelectric response with a coercive field of 98 MV m and a maximum remnant polarization of 3.2 μC cm is observed. Moreover, the piezoelectric and coefficients of printed then hot-pressed PVDF are measured to be -6.42 and 1.95 pC N, respectively. For energy-harvesting applications, a stretching -mode energy harvester is demonstrated to produce a power density of up to 717 μW cm, while a printed full-scale heel insole with embedded -mode energy harvesting is capable of successfully storing 32.2 μJ into a capacitor when used for 3 min. Therefore, precipitation printing provides a new method for producing high-β phase PVDF and bulk piezoelectric energy harvesters with the advantages of achieving geometry complexity, fabrication simplicity, and low cost.

摘要

聚偏氟乙烯(PVDF)具有出色的压电性能,这使其能够用作功能材料。作为一种半结晶聚合物,通过促进极性β相来提高PVDF的压电性能是一个关键的研究重点。在本研究中,沉淀印刷被证明是一种可扩展且可定制的方法,用于增材制造具有高β相PVDF的复杂且块状的3D压电能量收集器。通过沉淀印刷,PVDF的β相分数提高到60%,相对于溶剂浇铸的PVDF薄膜提高了200%以上。一旦将沉淀印刷的PVDF进行热压以减少内部孔隙率,就会观察到显著的铁电响应,其矫顽场为98 MV/m,最大剩余极化强度为3.2 μC/cm²。此外,经测量,印刷后再热压的PVDF的压电d₃₃和g₃₃系数分别为-6.42和1.95 pC/N。对于能量收集应用,展示了一种拉伸模式能量收集器,其功率密度高达717 μW/cm²,而带有嵌入式模式能量收集功能的印刷全尺寸脚跟鞋垫在使用3分钟时能够成功地将32.2 μJ的能量存储到一个电容器中。因此,沉淀印刷提供了一种生产高β相PVDF和块状压电能量收集器的新方法,具有实现几何形状复杂、制造简单和成本低的优点。

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