Effects of grain size on the corrosion inhibition and adsorption performance of benzotriazole on carbon steel in NaCl solution

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Panjun Wang, Jinke Wang, Yao Huang, Xuequn Cheng, Zhiwei Zhao, Lingwei Ma, Shun Wang, Ruijie Han, Zichang Zhang, Dawei Zhang, Xiaogang Li
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Abstract

This study investigates the adsorption mechanism, the film formation process, and the inhibition performance of benzotriazole (BTAH) on carbon steels with different grain sizes (i.e., 24.5, 4.3, and 0.6 µm) in 3.5 wt.% NaCl solution. The results demonstrate that grain refinement significantly impacts the adsorption and inhibition performance of BTAH on carbon steels. Ultra-refinement of steel grains to 0.6 µm improves the maximum inhibition efficiency of BTAH to 90.0% within 168 h of immersion, which was much higher than that of the steels with 24.5 µm (73.6%) and 4.3 µm grain sizes (81.7%). Notably, grain sizes of 4.3 and 0.6 µm facilitate a combination of physisorption and chemisorption of BTAH after 120 h of immersion, as evidenced by the X-ray photoelectron spectroscopy (XPS) results and Langmuir adsorption isotherms, while BTAH adsorbed on carbon steels with a grain size of 24.5 µm through physisorption during the 168 h of immersion. Ultra-refinement of grains has beneficial impacts on promoting the formation of a stable and dense corrosion inhibitor film, leading to improved corrosion resistance and the mitigation of non-uniform corrosion. These advantageous effects can be attributed to the higher adsorption energy at grain boundaries (approximately –3.12 eV) compared to grain interiors (ranging from –0.79 to 2.47 eV), promoting both the physisorption and chemisorption of organic corrosion inhibitors. The investigation comprehensively illustrates, for the first time, the effects of grain size on the adsorption mechanism, film formation process, and inhibition performance of organic corrosion inhibitors on carbon steels. This study demonstrates a promising approach to enhancing corrosion inhibition performance through microstructural design.

Abstract Image

粒度对苯并三唑在氯化钠溶液中对碳钢的缓蚀和吸附性能的影响
本研究探讨了苯并三唑(BTAH)在 3.5 wt.% NaCl 溶液中不同晶粒尺寸(即 24.5、4.3 和 0.6 µm)碳钢上的吸附机理、成膜过程和抑制性能。结果表明,晶粒细化会显著影响 BTAH 在碳钢上的吸附和抑制性能。将钢晶粒超细化至 0.6 微米可在浸泡 168 小时内将 BTAH 的最大抑制效率提高到 90.0%,远高于晶粒尺寸为 24.5 微米(73.6%)和 4.3 微米(81.7%)的钢。值得注意的是,晶粒大小为 4.3 和 0.6 微米的碳钢在浸泡 120 小时后可通过物理吸附和化学吸附相结合的方式吸附 BTAH,X 射线光电子能谱(XPS)结果和 Langmuir 吸附等温线都证明了这一点,而晶粒大小为 24.5 微米的碳钢在浸泡 168 小时后则通过物理吸附的方式吸附 BTAH。晶粒的超细化有利于促进形成稳定致密的缓蚀剂膜,从而提高耐腐蚀性并减轻不均匀腐蚀。这些有利影响可归因于晶粒边界的吸附能(约 -3.12 eV)高于晶粒内部(从 -0.79 到 2.47 eV),从而促进了有机缓蚀剂的物理吸附和化学吸附。这项研究首次全面阐述了晶粒尺寸对碳钢上有机缓蚀剂的吸附机理、成膜过程和缓蚀性能的影响。这项研究展示了一种通过微结构设计提高缓蚀性能的可行方法。
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来源期刊
Journal of Materials Science & Technology
Journal of Materials Science & Technology 工程技术-材料科学:综合
CiteScore
20.00
自引率
11.00%
发文量
995
审稿时长
13 days
期刊介绍: Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.
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