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用于继电器和能量传输触点的纳米颗粒浸润表面。

Nanoparticle-wetted surfaces for relays and energy transmission contacts.

作者信息

Voevodin Andrey A, Vaia Richard A, Patton Steven T, Diamanti Steven, Pender Mark, Yoonessi Mitra, Brubaker Jennifer, Hu Jian-Jun, Sanders Jeffrey H, Phillips Benjamin S, MacCuspie Robert I

机构信息

Air Force Research Laboratory, Materials and Manufacturing Directorate, Wright-Patterson Air Force Base, OH 45433, USA.

出版信息

Small. 2007 Nov;3(11):1957-63. doi: 10.1002/smll.200700500.

DOI:10.1002/smll.200700500
PMID:17963285
Abstract

Submonolayer coatings of noble-metal nanoparticle liquids (NPLs) are shown to provide replenishable surfaces with robust asperities and metallic conductivity that extends the durability of electrical relays by 10 to 100 times (depending on the current driven through the contact) as compared to alternative approaches. NPLs are single-component materials consisting of a metal nanoparticle core (5-20 nm Au or Pt nanoparticles) surrounded by a covalently tethered ionic-liquid corona of 1.5 to 2 nm. Common relay failure modes, such as stiction, surface distortion, and contact shorting, are suppressed with the addition of a submonolayer of NPLs to the contact surfaces. This distribution of NPLs results in a force profile for a contact-retraction cycle that is distinct from bare Au contacts and thicker, multilayer coatings of NPLs. Postmortem examination reveals a substantial decrease in topological change of the electrode surface relative to bare contacts, as well as an indication of lateral migration of the nanoparticles from the periphery towards the contact. A general extension of this concept to dynamic physical interfaces experiencing impact, sliding, or rolling affords alternatives to increase reliability and reduced losses for transmittance of electrical and mechanical energy.

摘要

研究表明,贵金属纳米颗粒液体(NPLs)的亚单层涂层可提供具有坚固粗糙度和金属导电性的可补充表面,与其他方法相比,这可将电继电器的耐久性提高10至100倍(取决于通过触点的电流)。NPLs是单组分材料,由金属纳米颗粒核心(5-20纳米的金或铂纳米颗粒)和1.5至2纳米的共价连接离子液体电晕包围。通过在接触表面添加亚单层NPLs,可抑制常见的继电器故障模式,如静摩擦、表面变形和接触短路。这种NPLs的分布导致接触缩回循环的力分布与裸金触点和更厚的NPLs多层涂层不同。事后检查显示,相对于裸触点,电极表面的拓扑变化大幅减少,同时表明纳米颗粒从周边向触点横向迁移。将这一概念普遍扩展到经历冲击、滑动或滚动的动态物理界面,可为提高电气和机械能传输的可靠性及降低损耗提供替代方案。

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