| Literature DB >> 33452266 |
Shuangyi Linghu1, Zhaoqi Gu1, Jinsheng Lu2, Wei Fang2, Zongyin Yang3, Huakang Yu4, Zhiyuan Li4, Runlin Zhu1, Jian Peng1, Qiwen Zhan1,5, Songlin Zhuang1, Min Gu6, Fuxing Gu7.
Abstract
Chemically synthesized metal nanowires are promising building blocks for next-generation photonic integrated circuits, but technological implementation in monolithic integration will be severely hampered by the lack of controllable and precise manipulation approaches, due to the strong adhesion of nanowires to substrates in non-liquid environments. Here, we demonstrate this obstacle can be removed by our proposed earthworm-like peristaltic crawling motion mechanism, based on the synergistic expansion, friction, and contraction in plasmon-driven metal nanowires in non-liquid environments. The evanescently excited surface plasmon greatly enhances the heating effect in metal nanowires, thereby generating surface acoustic waves to drive the nanowires crawling along silica microfibres. Advantages include sub-nanometer positioning accuracy, low actuation power, and self-parallel parking. We further demonstrate on-chip manipulations including transporting, positioning, orientation, and sorting, with on-situ operation, high selectivity, and great versatility. Our work paves the way to realize full co-integration of various functionalized photonic components on single chips.Entities:
Year: 2021 PMID: 33452266 PMCID: PMC7810692 DOI: 10.1038/s41467-020-20683-2
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919