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基于五边形PdSe的范德华异质结构中的层间摩擦和粘附效应

Interlayer Friction and Adhesion Effects in Penta-PdSe-Based van der Waals Heterostructures.

作者信息

Ru Guoliang, Qi Weihong, Sun Shu, Tang Kewei, Du Chengfeng, Liu Weimin

机构信息

State Key Laboratory of Solidification Processing and Center of Advanced Lubrication and Seal Materials, Northwestern Polytechnical University, Xi'an, 710072, China.

Shandong Laboratory of Yantai Advanced Materials and Green Manufacturing, Yantai, 265503, China.

出版信息

Adv Sci (Weinh). 2024 Sep;11(34):e2400395. doi: 10.1002/advs.202400395. Epub 2024 Jul 4.

Abstract

Due to their inherent lattice mismatch characteristics, 2D heterostructure interfaces are considered ideal for achieving stable and sustained ultralow friction (superlubricity). Despite extensive research, the current understanding of how interface adhesion affects interlayer friction remains limited. This study focused on graphene/MoS and graphene/PdSe heterostructure interfaces, where extremely low friction coefficients of ≈10 are observed. In contrast, the MoS/PdSe heterostructure interfaces exhibit higher friction coefficients, ≈0.02, primarily due to significant interfacial interactions driven by interlayer charge transfer, which is closely related to the ionic nature of 2D material crystals. These findings indicate that the greater the difference in ionicity between the two 2D materials comprising the sliding interfaces is, the lower the interlayer friction, providing key criteria for designing ultralow friction pairs. Moreover, the experimental results demonstrate that interlayer friction in heterostructure systems is closely associated with the material thickness and interface adhesion strength. These experimental findings are supported by molecular dynamics simulations, further validating the observed friction behavior. By integrating experimental observations with simulation analyses, this study reveals the pivotal role of interface adhesion in regulating interlayer friction and offers new insights into understanding and optimizing the frictional performance of layered solid lubricants.

摘要

由于其固有的晶格失配特性,二维异质结构界面被认为是实现稳定且持续的超低摩擦(超润滑)的理想选择。尽管进行了广泛研究,但目前对于界面粘附如何影响层间摩擦的理解仍然有限。本研究聚焦于石墨烯/MoS和石墨烯/PdSe异质结构界面,在这些界面处观察到了约为10的极低摩擦系数。相比之下,MoS/PdSe异质结构界面表现出更高的摩擦系数,约为0.02,这主要是由于层间电荷转移驱动的显著界面相互作用,而这与二维材料晶体的离子性质密切相关。这些发现表明,构成滑动界面的两种二维材料之间的离子性差异越大,层间摩擦越低,这为设计超低摩擦对提供了关键标准。此外,实验结果表明,异质结构系统中的层间摩擦与材料厚度和界面粘附强度密切相关。这些实验结果得到了分子动力学模拟的支持,进一步验证了观察到的摩擦行为。通过将实验观察与模拟分析相结合,本研究揭示了界面粘附在调节层间摩擦中的关键作用,并为理解和优化层状固体润滑剂的摩擦性能提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3cdb/11425967/a0ad7b9cacb4/ADVS-11-2400395-g009.jpg

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