高分子刷体超润滑摩擦界面的时空分辨拉曼光谱观察

IF 2.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Hikaru Okubo, Daiki Kagiwata, Ryusei Nakamura, Toru Takeuchi, Ken Nakano, Yoshinobu Tsujii
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引用次数: 0

摘要

追求耐用的超低摩擦摩擦学系统对于解决全球能源挑战和到2050年实现碳中和至关重要。受人类膝关节特殊摩擦性能的启发,浓缩聚合物刷(CPBs)已成为人工摩擦学应用的一种有前途的解决方案。然而,与传统的硬质材料相比,CPBs的一个主要挑战仍然是耐久性降低,特别是在长时间使用中保持超低摩擦。本研究的重点是了解离子液体润滑CPBs超低摩擦磨损消失背后的机制。为了研究这些现象,我们开发了一种实时和空间分辨的“运行中拉曼摩擦计”,用于实时监测摩擦界面处的分子动力学。时间和空间分辨率拉曼测量揭示了聚合物链行为、IL膜排水以及影响摩擦和磨损机制的内应力变化的关键见解。研究结果表明,“探针垂直升力”现象和固液界面结构的分布在超低摩擦向高摩擦转变和加速磨损中起着关键作用。这些发现为在各种工业应用中开发耐用、节能的摩擦学系统提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Time and Spatially Resolved Raman Spectroscopic Observation for Superlubricious Frictional Interfaces of Concentrated Polymer Brushes

Pursuing durable superlow friction tribological systems is essential for addressing global energy challenges and achieving carbon neutrality by 2050. Inspired by the exceptional frictional performance of human knee joints, concentrated polymer brushes (CPBs) have emerged as a promising solution for artificial tribological applications. However, a major challenge remains in the reduced durability of CPBs compared to traditional hard materials, particularly in maintaining superlow friction over extended use. This study focuses on understanding the mechanisms behind the vanishing superlow friction and wear of CPBs lubricated with ionic liquids (ILs). To investigate these phenomena, we developed a real-time and spatially resolved “in-operando Raman tribometer” for real-time monitoring of molecular dynamics at friction interfaces. Time and spatially resolved Raman measurements revealed critical insights into the polymer chain behavior, IL film drainage, and internal stress changes that influence friction and wear mechanisms. Our results suggest that the “probe vertical lift” phenomenon and distribution of the solid–liquid interface structure play key roles in the transition from superlow to high friction and accelerated wear. These findings provide a foundation for developing durable, energy-efficient tribological systems in various industrial applications.

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来源期刊
Tribology Letters
Tribology Letters 工程技术-工程:化工
CiteScore
5.30
自引率
9.40%
发文量
116
审稿时长
2.5 months
期刊介绍: Tribology Letters is devoted to the development of the science of tribology and its applications, particularly focusing on publishing high-quality papers at the forefront of tribological science and that address the fundamentals of friction, lubrication, wear, or adhesion. The journal facilitates communication and exchange of seminal ideas among thousands of practitioners who are engaged worldwide in the pursuit of tribology-based science and technology.
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