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数分钟内对结构化压电传感器进行连续三维打印。

Continuous Three-Dimensional Printing of Architected Piezoelectric Sensors in Minutes.

作者信息

Liu Siying, Wang Wenbo, Xu Weiheng, Liu Luyang, Zhang Wenlong, Song Kenan, Chen Xiangfan

机构信息

School of Manufacturing Systems and Networks, Arizona State University, Mesa, AZ 85212, USA.

The Polytechnic School, Arizona State University, Mesa, AZ 85212, USA.

出版信息

Research (Wash D C). 2022 Jul 11;2022:9790307. doi: 10.34133/2022/9790307. eCollection 2022.

Abstract

Additive manufacturing (AM), also known as three-dimensional (3D) printing, is thriving as an effective and robust method in fabricating architected piezoelectric structures, yet most of the commonly adopted printing techniques often face the inherent speed-accuracy trade-off, limiting their speed in manufacturing sophisticated parts containing micro-/nanoscale features. Herein, stabilized, photo-curable resins comprising chemically functionalized piezoelectric nanoparticles (PiezoNPs) were formulated, from which microscale architected 3D piezoelectric structures were printed continuously via micro continuous liquid interface production (CLIP) at speeds of up to ~60 m s, which are more than 10 times faster than the previously reported stereolithography-based works. The 3D-printed functionalized barium titanate (f-BTO) composites reveal a bulk piezoelectric charge constant of 27.70 pC N with the 30 wt% f-BTO. Moreover, rationally designed lattice structures that manifested enhanced, tailorable piezoelectric sensing performance as well as mechanical flexibility were tested and explored in diverse flexible and wearable self-powered sensing applications, e.g., motion recognition and respiratory monitoring.

摘要

增材制造(AM),也被称为三维(3D)打印,作为一种制造结构化压电结构的有效且强大的方法正在蓬勃发展。然而,大多数常用的打印技术往往面临固有的速度-精度权衡,限制了它们制造包含微/纳米级特征的复杂零件的速度。在此,我们制备了包含化学功能化压电纳米颗粒(PiezoNPs)的稳定光固化树脂,通过微连续液界面生产(CLIP)以高达约60 m/s的速度连续打印出微尺度结构化3D压电结构,这比之前报道的基于立体光刻的工作快10倍以上。3D打印的功能化钛酸钡(f-BTO)复合材料在30 wt% f-BTO时显示出27.70 pC/N的体压电电荷常数。此外,在各种柔性和可穿戴自供电传感应用中,如运动识别和呼吸监测,测试并探索了表现出增强的、可定制的压电传感性能以及机械柔韧性的合理设计的晶格结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f94d/9318352/c031cd4d20a4/RESEARCH2022-9790307.001.jpg

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