水和乙二醇环境中 Si3N4 摩擦诱导化学反应的神经网络分子动力学模拟

IF 1.4 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY Chemistry Letters Pub Date : 2024-07-06 DOI:10.1093/chemle/upae114
Ryutaro Kudo, Yusuke Ootani, Shogo Fukushima, Nobuki Ozawa, Momoji Kubo
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引用次数: 0

摘要

氮化硅(Si3N4)在水环境中由于摩擦化学反应形成的摩擦层而表现出低摩擦性。然而,在高接触压力条件下,这种低摩擦状态并不能保持,在这种条件下,滑动界面的表面-表面接触占主导地位,即承载能力较低。最近有报道称,乙二醇(EG)添加剂可提高 Si3N4 在水环境中的承载能力,但其机理仍存在争议。在本研究中,我们使用神经网络分子动力学方法进行了摩擦模拟,分析了水和一种 EG 添加剂的摩擦化学反应,该方法可进行大规模模拟,其精度可与原子分子动力学计算相媲美。我们发现,水的摩擦化学反应会产生 SiO2 颗粒。另一方面,EG 的摩擦化学反应在 Si3N4 表面产生由碳、氮和氢原子组成的化合物,Si3N4 表面被化合物覆盖。基于这一发现,我们认为覆盖在 Si3N4 表面的化合物可以提高其承载能力。
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Neural network molecular dynamics simulation on friction-induced chemical reactions of Si3N4 in water and ethylene glycol environments
Silicon nitride (Si3N4) exhibits low friction in aqueous environments due to a tribolayer that is formed through tribochemical reactions. However, the low friction state is not maintained in high contact pressure conditions, where surface-surface contact is dominant at the sliding interface, i.e. the load carrying capacity is low. Recently, it was reported that an ethylene glycol (EG) additive improves the load carrying capacity of Si3N4 in aqueous environments, though their mechanism is still in debate. In this study, we performed friction simulations to analyze the tribochemical reactions of water and an EG additive using a neural network molecular dynamics method which enables large-scale simulation with high accuracy comparable with ab initio molecular dynamics calculations. We found that tribochemical reactions of water produce SiO2 particles. On the other hand, tribochemical reactions of EG produce compounds which consist of carbon, nitrogen, and hydrogen atoms on the Si3N4 surface and the Si3N4 surface is covered by the compounds. Based on this finding, we propose that the compounds covering the Si3N4 surface can improve its load carrying capacity.
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来源期刊
Chemistry Letters
Chemistry Letters 化学-化学综合
CiteScore
3.00
自引率
6.20%
发文量
260
审稿时长
1.2 months
期刊介绍: Chemistry Letters covers the following topics: -Organic Chemistry- Physical Chemistry- Inorganic Chemistry- Analytical Chemistry- Materials Chemistry- Polymer Chemistry- Supramolecular Chemistry- Organometallic Chemistry- Coordination Chemistry- Biomolecular Chemistry- Natural Products and Medicinal Chemistry- Electrochemistry
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