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Moiré-Tile 花样操纵诱导的石墨烯在铂表面的摩擦开关。

Moiré-Tile Manipulation-Induced Friction Switch of Graphene on a Platinum Surface.

机构信息

Tianjin Key Lab for Rare Earth Materials and Applications, Center for Rare Earth and Inorganic Functional Materials, School of Materials Science and Engineering, Nankai University, 300350 Tianjin, China.

Department of Physics, University of Basel, 4056 Basel, Switzerland.

出版信息

Nano Lett. 2023 May 24;23(10):4693-4697. doi: 10.1021/acs.nanolett.2c03818. Epub 2023 Mar 14.

Abstract

Friction control and technological advancement are intimately intertwined. Concomitantly, two-dimensional materials occupy a unique position for realizing quasi-frictionless contacts. However, the question arises of how to tune superlubric sliding. Drawing inspiration from twistronics, we propose to control superlubricity via moiré patterning. Friction force microscopy and molecular dynamics simulations unequivocally demonstrate a transition from a superlubric to dissipative sliding regime for different twist angles of graphene moirés on a Pt(111) surface triggered by the normal force. This follows from a novel mechanism at superlattice level where, beyond a critical load, moiré tiles are manipulated in a highly dissipative shear process connected to the twist angle. Importantly, the atomic detail of the dissipation associated with the moiré tile manipulation─i.e., enduring forced registry beyond a critical normal load─allows the bridging of disparate sliding regimes in a reversible manner, thus paving the road for a subtly intrinsic control of superlubricity.

摘要

摩擦控制和技术进步是紧密交织在一起的。同时,二维材料在实现准无摩擦接触方面占据着独特的地位。然而,如何调整超滑滑动的问题出现了。受扭曲电子学的启发,我们提出通过莫尔图案来控制超滑。摩擦力显微镜和分子动力学模拟明确表明,对于在 Pt(111)表面上的石墨烯莫尔图案的不同扭转角度,在法向力的作用下,摩擦力从超滑滑动状态转变为耗散滑动状态。这源于超晶格水平上的一种新机制,在超过临界载荷后,莫尔瓷砖在与扭转角相关的高耗散剪切过程中被操纵。重要的是,与莫尔瓷砖操纵相关的耗散的原子细节——即在超过临界法向载荷后仍然保持强制对准——以可恢复的方式连接不同的滑动状态,从而为以微妙的内在方式控制超滑铺平了道路。

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