摩擦电效应
介电泳
材料科学
纳米发生器
微加工
软件可移植性
电压
商业化
整流器(神经网络)
纳米技术
微粒
放大器
炸薯条
光电子学
电气工程
微流控
CMOS芯片
计算机科学
工程类
替代医学
法学
随机神经网络
病理
循环神经网络
复合材料
制作
机器学习
政治学
人工神经网络
程序设计语言
医学
化学工程
作者
Jian Zhou,Ye Tao,Rui Xue,Yukun Ren
标识
DOI:10.1002/adma.202207093
摘要
Lab-on-a-chip systems aim to integrate laboratory operations on a miniaturized device with broad application prospects in the field of point-of-care testing. However, bulky peripheral power resources, such as high-voltage supplies, function generators, and amplifiers, hamper the commercialization of the system. In this work, a portable, self-powered microparticle manipulation platform based on triboelectrically driven dielectrophoresis (DEP) is reported. A rotary freestanding triboelectric nanogenerator (RF-TENG) and rectifier/filter circuit supply a high-voltage direct-current signal to form a non-uniform electric field within the microchannel, realizing controllable actuation of the microparticles through DEP. The operating mechanism of this platform and the control performance of the moving particles are systematically studied and analyzed. Randomly distributed particles converge in a row after passing through the serpentine channel and various particles are separated owing to the different DEP forces. Ultimately, the high-efficiency separation of live and dead yeast cells is achieved using this platform. RF-TENG as the power source for lab-on-a-chip exhibits better safety and portability than traditional high-voltage power sources. This study presents a promising solution for the commercialization of lab-on-a-chip.
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