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MoS 磨损过程中的自优化特性。

Property Self-Optimization During Wear of MoS.

机构信息

International Centre for Advanced Materials (ICAM; UIUC Spoke), Frederick Seitz Materials Research Laboratory, University of Illinois at Urbana-Champaign , 104 South Goodwin Avenue, MC-230, Urbana, Illinois 61801, United States.

International Centre for Advanced Materials (ICAM; Manchester Hub), School of Chemistry, University of Manchester , Oxford Road, Manchester M13 9PL, United Kingdom.

出版信息

ACS Appl Mater Interfaces. 2017 Jan 18;9(2):1953-1958. doi: 10.1021/acsami.6b13802. Epub 2017 Jan 6.

Abstract

Knowledge of their bulk physical properties often guides selection of appropriate tribological coating materials. However, these properties as well as the microstructure evolve dramatically under the extreme conditions imposed during mechanical wear. The dynamic response ultimately governs the material's wear performance; thus, understanding the dynamic evolution of the system is critical. This work characterizes the change in mechanical properties and microstructure as a function of wear cycles in model MoS films using a combination of nanowear testing, transmission electron microscopy, and site-specific nanopillar compression. Notably, mechanical wear enhances the mechanical properties of the MoS while simultaneously evolving a microstructure that reduces the coefficient of friction and wear rate. We hypothesize that this self-optimizing behavior underpins the exceptional lubricity and antiwear performance of MoS.

摘要

了解其宏观物理性能通常有助于选择合适的摩擦学涂层材料。然而,在机械磨损过程中施加的极端条件下,这些性能以及微观结构会发生剧烈变化。动态响应最终决定了材料的磨损性能;因此,了解系统的动态演变至关重要。本工作采用纳米磨损测试、透射电子显微镜和特定位置纳米压痕技术相结合的方法,研究了模型 MoS 薄膜在磨损循环过程中机械性能和微观结构的变化。值得注意的是,机械磨损提高了 MoS 的机械性能,同时演化出一种降低摩擦系数和磨损率的微观结构。我们假设这种自优化行为是 MoS 具有优异润滑性和抗磨损性能的基础。

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