具有出色机械强度、介电和压电特性的锆钛酸铅-纳米纤维素叠加制造柔性压电薄膜

IF 8.1 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Muhammad Latif, Yangxiaozhe Jiang, Jaehwan Kim
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引用次数: 0

摘要

通过溶液浇铸制备的基于纳米纤维素(NC)的压电薄膜显示出较低的机械性能、介电性能和压电性能,这是由于纤维素纳米纤维的随机取向和压电畴的分散造成的。此外,用于压电畴排列的高电场也会增加压电薄膜的脆性。本文首次展示了一种增材制造(AM)技术,可高效制造出机械强度高、柔韧性好的基于 NC 的压电薄膜。在 NC 悬浮液中混合不同浓度(10、20 和 30 wt%)的锆钛酸铅(PZT)颗粒并进行添加制造,然后在洁净室条件下进行干燥。然后,将磁感应电场引入涂有银电极的 PZT-NC 薄膜。获得的柔性压电 PZT-NC 薄膜具有出色的机械强度(203.5 ± 4.8 兆帕)、良好的柔韧性、高介电常数(87.7,1 kHz)、低介电损耗(0.09,1 kHz)和高压电常数(d = 53 pC/N)。此外,30PZT-NC 压电纳米发电机的峰-峰电压为 2.24 V,输出功率密度为 1.56 μW/cm。测得的机械、介电和压电特性均优于之前报道的基于 NC 的压电薄膜和市售 PVDF 薄膜。基于 NC 基压电薄膜出色的多功能特性,AM 技术可以取代传统的溶液浇铸方法,并在柔性压电材料领域开辟了广泛的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Additively manufactured flexible piezoelectric lead zirconate titanate-nanocellulose films with outstanding mechanical strength, dielectric and piezoelectric properties
Nanocellulose (NC)-based piezoelectric films prepared via solution casting show low mechanical, dielectric, and piezoelectric performance due to the randomly oriented cellulose nanofibers and dispersion of piezoelectric domains. Moreover, a high electric field for piezoelectric domain alignment may also increase the brittleness of the piezoelectric films. For the first time, an additive manufacturing (AM) technology is demonstrated to fabricate high mechanical strength and flexible NC-based piezoelectric films efficiently. Different concentrations (10, 20, and 30 wt%) of lead zirconate titanate (PZT) particles are mixed in the NC suspension and additively manufactured, followed by drying at cleanroom conditions. Next, the magnetically induced electric field is introduced into the PZT-NC films coated with silver electrodes. The obtained flexible piezoelectric PZT-NC films show outstanding mechanical strength of 203.5 ± 4.8 MPa, good flexibility, high dielectric constant (87.7 at 1 kHz), low dielectric loss (0.09 at 1 kHz), and high piezoelectric constant (d = 53 pC/N). Furthermore, the 30PZT-NC piezoelectric nanogenerator showed a peak-to-peak voltage of 2.24 V and an output power density of 1.56 μW/cm. The measured mechanical, dielectric, and piezoelectric properties are superior to the previously reported NC-based piezoelectric and commercially available PVDF films. Based on the outstanding multifunctional properties of NC-based piezoelectric films, AM technology can replace traditional solution casting methods and open a wide range of applications in flexible piezoelectric materials.
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来源期刊
Materials Today Advances
Materials Today Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
14.30
自引率
2.00%
发文量
116
审稿时长
32 days
期刊介绍: Materials Today Advances is a multi-disciplinary, open access journal that aims to connect different communities within materials science. It covers all aspects of materials science and related disciplines, including fundamental and applied research. The focus is on studies with broad impact that can cross traditional subject boundaries. The journal welcomes the submissions of articles at the forefront of materials science, advancing the field. It is part of the Materials Today family and offers authors rigorous peer review, rapid decisions, and high visibility.
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