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Monolithic carbon structures including suspended single nanowires and nanomeshes as a sensor platform

机译:整体碳结构,包括悬浮的单纳米线和纳米网作为传感器平台

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摘要

With the development of nanomaterial-based nanodevices, it became inevitable to develop cost-effective and simple nanofabrication technologies enabling the formation of nanomaterial assembly in a controllable manner. Herein, we present suspended monolithic carbon single nanowires and nanomeshes bridging two bulk carbon posts, fabricated in a designed manner using two successive UV exposure steps and a single pyrolysis step. The pyrolysis step is accompanied with a significant volume reduction, resulting in the shrinkage of micro-sized photoresist structures into nanoscale carbon structures. Even with the significant elongation of the suspended carbon nanowire induced by the volume reduction of the bulk carbon posts, the resultant tensional stress along the nanowire is not significant but grows along the wire thickness; this tensional stress gradient and the bent supports of the bridge-like carbon nanowire enhance structural robustness and alleviate the stiction problem that suspended nanostructures frequently experience. The feasibility of the suspended carbon nanostructures as a sensor platform was demonstrated by testing its electrochemical behavior, conductivity-temperature relationship, and hydrogen gas sensing capability.
机译:随着基于纳米材料的纳米器件的发展,开发具有成本效益的简单纳米制造技术成为必然,这使得能够以可控的方式形成纳米材料组装体。在这里,我们提出了悬浮的单块碳单纳米线和桥接两个大块碳柱的纳米网格,它们是使用两个连续的紫外线曝光步骤和一个热解步骤以设计方式制造的。热解步骤伴随着体积的显着减小,导致将微米尺寸的光刻胶结构收缩成纳米级碳结构。即使由于散装碳柱的体积减少而引起的悬浮碳纳米线显着伸长,沿纳米线所产生的拉伸应力也不显着,但会随着线的厚度而增加。这种拉应力梯度和桥状碳纳米线的弯曲支撑增强了结构的坚固性,并减轻了悬浮的纳米结构经常遇到的静摩擦问题。通过测试其电化学行为,电导率-温度关系和氢气感测能力,证明了悬浮碳纳米结构作为传感器平台的可行性。

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