光学镊子
纳米技术
微尺度化学
微流控
计算机科学
镊子
材料科学
流体学
灵活性(工程)
分类
商业化
实验室晶片
全息术
半导体
纳米制造
超短脉冲
功率(物理)
介电泳
纳米生物技术
光热治疗
复制(统计)
生物电子学
纳米光子学
微通道
光电子学
作者
Zonghao Li,Chunbo Yao,Gong Li,Henan Du,Hui Li,Weihua Yu,Rongxin Fu,Kangfu Chen,Meiyi Zhou,Huikai Xie,Wei Xie,Hai‐nan Xie,Lingling Shui,Mohammad Asif Zaman,Lambertus Hesselink,Steven L. Neale,Xicheng Zhang
摘要
Optoelectronic tweezers (OETs) have emerged as a transformative micromanipulation technology that transcends the limitations of traditional optical tweezers by utilizing light-induced dielectrophoresis. By leveraging the photoconductive effect of semiconductor materials, OET creates dynamic “virtual electrodes” that generate non-uniform electric fields, enabling high-throughput, noninvasive manipulation of microscale and nanoscale objects at optical power densities several orders of magnitude lower than conventional laser-based trapping. This review provides a rigorous examination of the fundamental physical principles of OET, while detailing its strategic integration with diverse microfluidic architectures. We systematically evaluate the synergy between OET and three primary fluidic platforms: channel microfluidics, which facilitates continuous-flow sorting and single-cell analysis; digital microfluidics, enabling precise particle handling within discrete droplets; and optoelectrowetting, which supports flexible droplet transport across complex topographies. Beyond laboratory research, we highlight the commercialization of these systems in biopharmaceutical discovery and the burgeoning role of artificial intelligence in catalyzing a paradigm shift toward autonomous, intelligent robotic platforms for precision medicine. Finally, we outline future frontiers in novel photoconductive materials and discuss the roadmap for highly integrated optofluidic systems in clinical diagnostics and cell therapy development.
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