机器人
微电子
薄脆饼
执行机构
计算机科学
平版印刷术
电气工程
纳米技术
电压
集成电路
制作
半导体
硅
材料科学
人工智能
光电子学
工程类
病理
替代医学
医学
作者
Marc Z. Miskin,Alejandro J. Cortese,Kyle Dorsey,Edward Esposito,Michael Reynolds,Qingkun Liu,Michael C. Cao,David A. Muller,Paul L. McEuen,Itai Cohen
出处
期刊:Nature
[Nature Portfolio]
日期:2020-08-26
卷期号:584 (7822): 557-561
被引量:257
标识
DOI:10.1038/s41586-020-2626-9
摘要
Fifty years of Moore’s law scaling in microelectronics have brought remarkable opportunities for the rapidly evolving field of microscopic robotics1–5. Electronic, magnetic and optical systems now offer an unprecedented combination of complexity, small size and low cost6,7, and could be readily appropriated for robots that are smaller than the resolution limit of human vision (less than a hundred micrometres)8–11. However, a major roadblock exists: there is no micrometre-scale actuator system that seamlessly integrates with semiconductor processing and responds to standard electronic control signals. Here we overcome this barrier by developing a new class of voltage-controllable electrochemical actuators that operate at low voltages (200 microvolts), low power (10 nanowatts) and are completely compatible with silicon processing. To demonstrate their potential, we develop lithographic fabrication-and-release protocols to prototype sub-hundred-micrometre walking robots. Every step in this process is performed in parallel, allowing us to produce over one million robots per four-inch wafer. These results are an important advance towards mass-manufactured, silicon-based, functional robots that are too small to be resolved by the naked eye. A new class of voltage-controllable electrochemical actuators that are compatible with silicon processing are used to produce over one million sub-hundred-micrometre walking robots on a single four-inch wafer.
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