Effect of applied voltage on surface properties of electrophoretic hybrid ZnO/HAp/PMEA coated stainless steel 316L

IF 4.3 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Chemistry and Physics Pub Date : 2025-02-25 DOI:10.1016/j.matchemphys.2025.130604
Mohanram Murugan, Jayakrishna Kandasamy, S. Arulvel
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Abstract

During electrophoretic deposition (EPD), the deposition rate is crucial for preventing particle aggregation, which can lead to uneven distribution of nanoparticles on the SS316L surface. In this study, the deposition rate was optimized by analyzing the physical and surface properties of ZHP (ZnO (Zinc Oxide)/HAp (Hydroxyapatite)/PMEA (Polymethoxyethylacrylate)) nanocomposite coatings. The primary factors controlling the deposition rate with varied applied voltages (50 and 60 V) are temperature and current. At 60 V, the increased temperature reduces viscosity and improves the mobility of ZHP nanocomposites. Additionally, the increased current ensures a denser coating with fewer defects. To verify these effects, the physical properties of the ZHP nanocomposite coatings were characterized by surface analysis, X-ray diffraction, vibrational spectroscopy, and surface energy analysis. Among the ZHP nanocomposite coatings, ZHP-2 (0.115 % (w/V)–ZnO, 0.115 % (w/V)-HAp, 15.39 % (v/V)-PMEA, at 60V) showed a crack-free, less porous, and evenly distributed surface. X-ray diffraction analysis revealed that ZHP-2 had a reduced crystal diameter, increased micro-strain, decreased lattice constant, and increased dislocation density compared to ZHP-1 (0.115 % (w/V)–ZnO, 0.115 % (w/V)-HAp, 15.39 % (v/V)-PMEA, at 50V). Vibrational spectroscopy results confirmed the higher functionalization of the functional groups of additives and nanoparticles (ZnO and HAp) in ZHP-2. Lower surface energy indicated that hydrophobicity was present on the ZHP-2 coating. Further, the ZHP-2 showed significant improvements in surface properties such as general shear failure, higher hardness, lower roughness, higher bonding strength, higher scratch hardness, and shallower scratch depth. Therefore, the ZHP-2 nanocomposite coating exhibited a controlled deposition rate by reducing particle aggregation during EPD.

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在电泳沉积(EPD)过程中,沉积速率对于防止颗粒聚集至关重要,因为颗粒聚集会导致纳米颗粒在 SS316L 表面分布不均。在本研究中,通过分析 ZHP(ZnO(氧化锌)/HAp(羟基磷灰石)/PMEA(聚甲氧基乙基丙烯酸酯))纳米复合涂层的物理和表面特性,对沉积速率进行了优化。控制不同应用电压(50 和 60 V)下沉积速率的主要因素是温度和电流。在 60 V 电压下,温度升高可降低粘度,提高 ZHP 纳米复合材料的流动性。此外,增加电流可确保涂层更致密,缺陷更少。为了验证这些效果,我们通过表面分析、X 射线衍射、振动光谱和表面能分析对 ZHP 纳米复合材料涂层的物理性质进行了表征。在 ZHP 纳米复合涂层中,ZHP-2(0.115 % (w/V)-ZnO, 0.115 % (w/V)-HAp, 15.39 % (v/V)-PMEA, 60V 条件下)的表面无裂纹、孔隙较少且分布均匀。X 射线衍射分析表明,与 ZHP-1(0.115 % (w/V)-ZnO, 0.115 % (w/V)-HAp, 15.39 % (v/V)-PMEA, 50V 条件下)相比,ZHP-2 的晶体直径减小,微应变增加,晶格常数降低,位错密度增加。振动光谱结果证实,ZHP-2 中添加剂和纳米粒子(氧化锌和 HAp)的官能团具有更高的官能度。较低的表面能表明 ZHP-2 涂层具有疏水性。此外,ZHP-2 还显著改善了表面性能,如一般剪切失效、更高的硬度、更低的粗糙度、更高的粘合强度、更高的划痕硬度和更浅的划痕深度。因此,ZHP-2 纳米复合涂层在 EPD 过程中减少了颗粒聚集,从而显示出可控的沉积速率。
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来源期刊
Materials Chemistry and Physics
Materials Chemistry and Physics 工程技术-材料科学:综合
CiteScore
8.70
自引率
4.30%
发文量
1515
审稿时长
69 days
期刊介绍: Materials Chemistry and Physics is devoted to short communications, full-length research papers and feature articles on interrelationships among structure, properties, processing and performance of materials. The Editors welcome manuscripts on thin films, surface and interface science, materials degradation and reliability, metallurgy, semiconductors and optoelectronic materials, fine ceramics, magnetics, superconductors, specialty polymers, nano-materials and composite materials.
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