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类金刚石碳涂层原子力显微镜探针的摩擦化学磨损。

Tribochemical Wear of Diamond-Like Carbon-Coated Atomic Force Microscope Tips.

机构信息

Department of Mechanical Engineering and Applied Mechanics, University of Pennsylvania , Philadelphia, Pennsylvania 19104, United States.

Department of Mechanical Engineering and Materials Science, University of Pittsburgh , Pittsburgh, Pennsylvania 15261, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Oct 11;9(40):35341-35348. doi: 10.1021/acsami.7b08026. Epub 2017 Sep 29.

Abstract

Nanoscale wear is a critical issue that limits the performance of tip-based nanomanufacturing and nanometrology processes based on atomic force microscopy (AFM). Yet, a full scientific understanding of nanoscale wear processes remains in its infancy. It is therefore important to quantitatively understand the wear behavior of AFM tips. Tip wear is complex to understand due to adhesive forces and contact stresses that change substantially as the contact geometry evolves due to wear. Here, we present systematic characterization of the wear of commercial Si AFM tips coated with thin diamond-like carbon (DLC) coatings. Wear of DLC was measured as a function of external loading and sliding distance. Transmission electron microscopy imaging, AFM-based adhesion measurements, and tip geometry estimation via inverse imaging were used to assess nanoscale wear and the contact conditions over the course of the wear tests. Gradual wear of DLC with sliding was observed in the experiments, and the tips evolved from initial paraboloidal shapes to flattened geometries. The wear rate is observed to increase with the average contact stress, but does not follow the classical wear law of Archard. A wear model based on the transition state theory, which gives an Arrhenius relationship between wear rate and normal stress, fits the experimental data well for low mean contact stresses (<0.3 GPa), yet it fails to describe the wear at higher stresses. The wear behavior over the full range of stresses is well described by a recently proposed multibond wear model that exhibits a change from Archard-like behavior at high stresses to a transition state theory description at lower stresses.

摘要

纳米级磨损是限制基于原子力显微镜(AFM)的尖端纳米制造和纳米计量过程性能的关键问题。然而,对纳米级磨损过程的全面科学理解仍处于起步阶段。因此,定量了解 AFM 尖端的磨损行为非常重要。由于粘着力和接触应力随着磨损导致接触几何形状的演变而发生很大变化,因此尖端磨损很难理解。在这里,我们对涂有薄类金刚石碳(DLC)涂层的商业 Si AFM 尖端的磨损进行了系统的表征。测量了 DLC 的磨损量作为外部加载和滑动距离的函数。通过使用透射电子显微镜成像、基于原子力显微镜的粘附测量以及通过反向成像估计尖端几何形状,评估了磨损过程中的纳米级磨损和接触条件。在实验中观察到 DLC 随滑动逐渐磨损,并且尖端从初始抛物线形状演变为扁平形状。磨损率随着平均接触应力的增加而增加,但不符合经典的阿查德磨损定律。基于过渡态理论的磨损模型给出了磨损率与法向应力之间的阿累尼乌斯关系,该模型很好地拟合了低平均接触应力(<0.3 GPa)下的实验数据,但无法描述高应力下的磨损。通过最近提出的多键磨损模型可以很好地描述整个应力范围内的磨损行为,该模型在高应力下表现出与阿查德行为相似,而在低应力下表现出过渡态理论描述。

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