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电流密度对Cu-Ni-ZnNiCuO纳米复合涂层耐腐蚀性能及光催化性能的影响

Effect of Current Density on the Corrosion Resistance and Photocatalytic Properties of Cu-Ni-ZnNiCuO Nanocomposite Coatings.

作者信息

Tan Haifeng, Yang Wenchao, Hao Mingzhu, Wang Chao, Yang Jie, Sunyu Haixuan, Ling Yunhe, Song Guihong, He Chunlin

机构信息

Liaoning Provincial Key Laboratory of Advanced Materials, Shenyang University, Shenyang 110044, China.

School of Material Science and Technology, Shenyang University of Technology, Shenyang 110870, China.

出版信息

Materials (Basel). 2023 Jul 10;16(14):4925. doi: 10.3390/ma16144925.

Abstract

2 at.% Cu + 2 at.% Ni were co-doped in ZnO nanoparticles by a simple hydrothermal method, and then the modified nanoparticles were compounded into Cu-Ni alloy coatings using an electroplating technique. The effects of the current density (15-45 mA/cm) on the phase structure, surface morphology, thickness, microhardness, corrosion resistance, and photocatalytic properties of the coatings were investigated. The results show that the Cu-Ni-ZnNiCuO nanocomposite coatings had the highest compactness and the best overall performance at a current density of 35 mA/cm. At this point, the co-deposition rate reached its maximum, resulting in the deposition of more ZnNiCuO nanoparticles in the coating. More nanoparticles were dispersed in the coating with a better particle strengthening effect, which resulted in a minimum crystallite size of 15.21 nm and a maximum microhardness of 558 HV. Moreover, the surface structure of the coatings became finer and denser. Therefore, the corrosion resistance was significantly improved with a corrosion current density of 2.21 × 10 mA/cm, and the charge transfer resistance was up to 20.98 kΩ·cm. The maximum decolorization rate of the rhodamine B solution was 24.08% under ultraviolet light irradiation for 5 h. The improvement in the comprehensive performance was mainly attributed to the greater concentration of ZnNiCuO nanoparticles in the coating, which played the role of the particle-reinforced phase and reduced the microstructure defects.

摘要

采用简单水热法在ZnO纳米颗粒中共掺杂2 at.%的Cu和2 at.%的Ni,然后利用电镀技术将改性后的纳米颗粒复合到Cu-Ni合金涂层中。研究了电流密度(15 - 45 mA/cm²)对涂层的相结构、表面形貌、厚度、显微硬度、耐腐蚀性和光催化性能的影响。结果表明,在电流密度为35 mA/cm²时,Cu-Ni-ZnNiCuO纳米复合涂层具有最高的致密性和最佳的综合性能。此时,共沉积速率达到最大值,导致涂层中沉积了更多的ZnNiCuO纳米颗粒。更多的纳米颗粒分散在涂层中,具有更好的颗粒强化效果,使得微晶尺寸最小为15.21 nm,显微硬度最大为558 HV。此外,涂层的表面结构变得更精细、更致密。因此,耐腐蚀性显著提高,腐蚀电流密度为2.21×10⁻⁶ mA/cm²,电荷转移电阻高达20.98 kΩ·cm²。在紫外光照射5 h下,罗丹明B溶液的最大脱色率为24.08%。综合性能的提高主要归因于涂层中ZnNiCuO纳米颗粒的浓度更高,其起到了颗粒增强相的作用并减少了微观结构缺陷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/83df/10381491/79abe9b3caee/materials-16-04925-g001.jpg

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