Operando formation of hydration layer and tribofilm of graphene oxide for achieving synergistic lubrication on electrochemical boronizing surface

IF 11.6 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Carbon Pub Date : 2025-03-10 Epub Date: 2025-02-04 DOI:10.1016/j.carbon.2025.120089
Junqin Shi , Shaochong Yin , Hang Li , Xiaobin Yi , Hongxing Wu , Tengfei Cao , Xiaoli Fan , Jing Liu , Feng Zhou
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Abstract

Graphene oxide (GO) has emerged as a promising additive for water-based lubricants, however, its costly functionalization and the real-world challenges of integrating it in harsh environments complicate its application in engineering materials. Additionally, the mechanisms through which it effectively reduces friction and wear remain inadequately understood. This study addresses these obstacles by proposing a novel strategy to enhance the adhesion of GO on the surfaces of engineering materials through advanced surface engineering techniques. A high-hardness and anti-wear boriding surface on GCr15 steel is prepared through the fast electrochemical boronizing (ECB) treatment. GO nanosheets show a strong attraction on the ECB surface to form a dense operando tribofilm with high load-bearing capacity, through the squeezing and shear film formation mechanisms as revealed by molecular dynamics simulations. Under such confined conditions, water film existing between GO interlayers and SiO2 surfaces induces the optimal hydration lubrication, with a friction coefficient down to 0.04 and near-zero wear for the synergistic effect of ECB surface and 1 wt% GO nanosheet solution. Conversely, the increase in sliding frequency and load damages the GO tribofilm, resulting in hydration lubrication failure. Our findings corroborate the intimate correlation between the hydration lubrication and the synergy of ECB treatment and solid-liquid composite lubricant, advancing the field of tribology and promoting practical applications of GO in lubrication.

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氧化石墨烯水化层和摩擦膜的形成,实现电化学渗硼表面的协同润滑
氧化石墨烯(GO)已成为一种很有前途的水性润滑剂添加剂,然而,其昂贵的功能化和在恶劣环境中集成它的现实挑战使其在工程材料中的应用复杂化。此外,它有效减少摩擦和磨损的机制仍然没有得到充分的了解。本研究提出了一种新的策略,通过先进的表面工程技术来增强氧化石墨烯在工程材料表面的附着力,从而解决了这些障碍。通过快速电化学渗硼(ECB)处理,制备了GCr15钢的高硬度耐磨渗硼表面。分子动力学模拟揭示了氧化石墨烯纳米片通过挤压和剪切成膜机制在ECB表面形成致密的高承载能力的operando摩擦膜。在此约束条件下,氧化石墨烯中间层与SiO2表面之间存在水膜,产生最佳的水化润滑效果,ECB表面与1 wt%氧化石墨烯纳米片溶液协同作用,摩擦系数降至0.04,磨损接近于零。反之,滑动频率和载荷的增加会破坏氧化石墨烯摩擦膜,导致水化润滑失效。我们的研究结果证实了水化润滑与ECB处理和固液复合润滑剂的协同作用之间的密切联系,推动了摩擦学领域的发展,促进了氧化石墨烯在润滑中的实际应用。
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来源期刊
Carbon
Carbon 工程技术-材料科学:综合
CiteScore
20.80
自引率
7.30%
发文量
0
审稿时长
23 days
期刊介绍: The journal Carbon is an international multidisciplinary forum for communicating scientific advances in the field of carbon materials. It reports new findings related to the formation, structure, properties, behaviors, and technological applications of carbons. Carbons are a broad class of ordered or disordered solid phases composed primarily of elemental carbon, including but not limited to carbon black, carbon fibers and filaments, carbon nanotubes, diamond and diamond-like carbon, fullerenes, glassy carbon, graphite, graphene, graphene-oxide, porous carbons, pyrolytic carbon, and other sp2 and non-sp2 hybridized carbon systems. Carbon is the companion title to the open access journal Carbon Trends. Relevant application areas for carbon materials include biology and medicine, catalysis, electronic, optoelectronic, spintronic, high-frequency, and photonic devices, energy storage and conversion systems, environmental applications and water treatment, smart materials and systems, and structural and thermal applications.
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