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取向对超薄纤维素纳米纤维膜压电性能的影响

Alignment Effect on the Piezoelectric Properties of Ultrathin Cellulose Nanofiber Films.

作者信息

Zhai Lindong, Kim Hyun Chan, Kim Jung Woong, Kim Jaehwan

机构信息

Creative Research Center for Nanocellulose Future Composites, Department of Mechanical Engineering, Inha University, 100 Inha-Ro, Michuhol-Ku, Incheon 22212, Republic of Korea.

出版信息

ACS Appl Bio Mater. 2020 Jul 20;3(7):4329-4334. doi: 10.1021/acsabm.0c00364. Epub 2020 Jun 30.

Abstract

This study aims at evaluating the piezoelectric property of an ultrathin cellulose nanofiber (CNF) film in a thickness direction. Cellulose is known to have piezoelectric properties. However, its measurement is not easy. By making an ultrathin CNF film and eliminating space charges, the pure piezoelectric property of CNF is intended to be measured. A 600 nm thick ultrathin CNF film was prepared using a microfabrication process. The effect of alignment methods on the piezoelectric property of the ultrathin CNF film in the thickness direction was investigated with the three alignment methods: corona poling, electrical in-plane alignment, and high magnetic field (HiMA) alignment. Piezoresponse force microscopy (PFM) was utilized to analyze the piezoelectric property. By applying AC voltages using PFM, the vertical displacement on the ultrathin CNF film surface was recorded and converted into the piezoelectric coefficient, . The aligned ultrathin CNF films show different piezoelectric coefficients. The corona-poled ultrathin CNF film shows the largest piezoelectric coefficient among the three alignment methods. Water contact angle measurement proves that the piezoelectric constant in the thickness direction is associated with hydroxyl groups in cellulose chains appearing on the surface of the ultrathin CNF films.

摘要

本研究旨在评估超薄纤维素纳米纤维(CNF)薄膜在厚度方向上的压电性能。已知纤维素具有压电性能。然而,对其进行测量并非易事。通过制备超薄CNF薄膜并消除空间电荷,旨在测量CNF的纯压电性能。采用微加工工艺制备了厚度为600 nm的超薄CNF薄膜。利用电晕极化、面内电场取向和高磁场(HiMA)取向这三种取向方法,研究了取向方法对超薄CNF薄膜在厚度方向上压电性能的影响。采用压电响应力显微镜(PFM)分析压电性能。通过使用PFM施加交流电压,记录超薄CNF薄膜表面的垂直位移并将其转换为压电系数。取向的超薄CNF薄膜表现出不同的压电系数。在这三种取向方法中,电晕极化的超薄CNF薄膜具有最大的压电系数。水接触角测量证明,厚度方向上的压电常数与出现在超薄CNF薄膜表面的纤维素链中的羟基有关。

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