Wettability of Sn alloys at metal interfaces: Metal surface treatment, interfacial temperature control and elemental modification

IF 6.1 2区 材料科学 Q1 MATERIALS SCIENCE, COATINGS & FILMS Surface & Coatings Technology Pub Date : 2025-04-15 Epub Date: 2025-02-28 DOI:10.1016/j.surfcoat.2025.131991
Yurong Wang , Wei Liu , Buwei Xiao , Xiaoyu Liang , Pengcheng Lv , Jun Zhou , Feng Lin
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Abstract

Controlling the wettability of metal surfaces has been extensively studied in advanced fields such as bio-manufacturing, metalworking, and aerospace, which determines interfacial properties such as corrosion resistance and heat transfer efficiency. Wettability is primarily determined by the physical and chemical properties of the metal surface, but can also be influenced by ambient temperature, surface morphology, and chemical composition. In this study, the surfaces of various metallic substrates (Ti6Al4V, 304 stainless steel, Inconel 718, aluminum, and copper) were polished, textured with a femtosecond laser, and surface coated. The wettability of Sn alloys (Sn-0.7Cu and Sn-0.7Cu-10Zn) on different metal surfaces was investigated within an appropriate temperature range and evaluated in terms of high-temperature contact angle (HTCA). The wettability of the alloy surface exhibits a tendency to decrease with increasing temperature. After polishing, Sn alloy exhibited the lowest HTCA of 102.41° on the copper substrate. Following femtosecond laser texturing, metal substrates with laser included laser-induced periodic surface (LIPSS) texture pattern demonstrated better wettability than those with a micro-pits texture. When the femtosecond laser exposure was 500, the HTCA of Sn-0.7Cu alloy on a Ti-6Al-4V alloy with a LIPSS texture (115.7°) was reduced by 5.9 % and 17.2 % compared to the polished surface (122.9°) and the surface with a micro-pits texture (139.6°), respectively. The addition of zinc to the Sn alloy significantly impacted the wettability of the 304 stainless steel substrates. The HTCA decreased by 7.6 % on the polished surface for the Sn-0.7Cu-10Zn alloy (116.8°) compared to the Sn-0.7Cu alloy (126.4°). Notably, the HTCA of the Sn-0.7Cu-10Zn alloy on the 304 SS substrate surface was as low as 12.33° when a Sn alloy coating was applied. In conclusion, the effect of modulation of wettability was realized in specific cases through various metal surface treatments in this work.
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锡合金在金属界面的润湿性:金属表面处理、界面温度控制和元素改性
控制金属表面的润湿性在生物制造、金属加工和航空航天等先进领域得到了广泛的研究,它决定了界面性能,如耐腐蚀性和传热效率。润湿性主要由金属表面的物理和化学性质决定,但也会受到环境温度、表面形态和化学成分的影响。在这项研究中,各种金属衬底(Ti6Al4V, 304不锈钢,Inconel 718,铝和铜)的表面被抛光,用飞秒激光编织,表面涂层。在适当的温度范围内研究了Sn-0.7 cu和Sn-0.7 cu - 10zn合金在不同金属表面的润湿性,并用高温接触角(HTCA)评价了润湿性。合金表面的润湿性随温度的升高有降低的趋势。抛光后,锡合金在铜基体上的HTCA最低,为102.41°。经飞秒激光织构后,含有激光诱导周期表面(LIPSS)织构图案的金属基片的润湿性优于含有微凹坑织构图案的金属基片。当飞秒激光曝光量为500时,Sn-0.7Cu合金在具有LIPSS织体(115.7°)的Ti-6Al-4V合金表面的HTCA分别比抛光表面(122.9°)和微凹坑织体(139.6°)表面降低了5.9%和17.2%。在锡合金中添加锌对304不锈钢基体的润湿性有显著影响。与Sn-0.7Cu- 10zn合金(126.4°)相比,Sn-0.7Cu- 10zn合金(116.8°)抛光表面的HTCA降低了7.6%。Sn-0.7 cu - 10zn合金在304 SS基体表面的HTCA低至12.33°。综上所述,本文通过不同的金属表面处理,在特定情况下实现了润湿性的调节作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Surface & Coatings Technology
Surface & Coatings Technology 工程技术-材料科学:膜
CiteScore
10.00
自引率
11.10%
发文量
921
审稿时长
19 days
期刊介绍: Surface and Coatings Technology is an international archival journal publishing scientific papers on significant developments in surface and interface engineering to modify and improve the surface properties of materials for protection in demanding contact conditions or aggressive environments, or for enhanced functional performance. Contributions range from original scientific articles concerned with fundamental and applied aspects of research or direct applications of metallic, inorganic, organic and composite coatings, to invited reviews of current technology in specific areas. Papers submitted to this journal are expected to be in line with the following aspects in processes, and properties/performance: A. Processes: Physical and chemical vapour deposition techniques, thermal and plasma spraying, surface modification by directed energy techniques such as ion, electron and laser beams, thermo-chemical treatment, wet chemical and electrochemical processes such as plating, sol-gel coating, anodization, plasma electrolytic oxidation, etc., but excluding painting. B. Properties/performance: friction performance, wear resistance (e.g., abrasion, erosion, fretting, etc), corrosion and oxidation resistance, thermal protection, diffusion resistance, hydrophilicity/hydrophobicity, and properties relevant to smart materials behaviour and enhanced multifunctional performance for environmental, energy and medical applications, but excluding device aspects.
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