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首页> 外文期刊>Science Advances >Giant electrochemical actuation in a nanoporous silicon-polypyrrole hybrid material
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Giant electrochemical actuation in a nanoporous silicon-polypyrrole hybrid material

机译:纳米多孔硅 - 聚吡咯杂交材料中的巨型电化学致动

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摘要

The absence of piezoelectricity in silicon makes direct electromechanical applications of this mainstream semiconductor impossible. Integrated electrical control of the silicon mechanics, however, would open up new perspectives for on-chip actuorics. Here, we combine wafer-scale nanoporosity in single-crystalline silicon with polymerization of an artificial muscle material inside pore space to synthesize a composite that shows macroscopic electrostrain in aqueous electrolyte. The voltage-strain coupling is three orders of magnitude larger than the best-performing ceramics in terms of piezoelectric actuation. We trace this huge electroactuation to the concerted action of 100 billions of nanopores per square centimeter cross section and to potential-dependent pressures of up to 150 atmospheres at the single-pore scale. The exceptionally small operation voltages (0.4 to 0.9 volts), along with the sustainable and biocompatible base materials, make this hybrid promising for bioactuator applications.
机译:在硅中没有压电性使得这种主流半导体的直接机电应用是不可能的。然而,硅力学的集成电气控制将开辟片上拼写的新观点。这里,我们将单晶硅中的晶片级纳米晶体与孔隙空间内的人工肌肉材料的聚合相结合,合成显示在水性电解质中的宏观电解槽的复合材料。在压电致动方面,电压 - 应变耦合是比最佳性能的陶瓷更大的三个数量级。我们将这种巨大的电动致致力于100厘米厘米横截面的齐全的纳米孔,并在单孔秤处具有高达150个大气压的潜在依赖性压力。与可持续和生物相容性的基础材料一起出现极小的操作电压(0.4至0.9伏),使得这种混合用于生物膜剂应用。

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