The effect of microplasma spraying parameters on the particle size and surface structure of tantalum coatings on Ti-6Al-4V alloy implants
S. Voinarovych

, S. Kaliuzhnyi

, O. Kyslytsia

, D. Alontseva

, E. Koytchev

, A. Alexiev

Abstract: Objective: The article is devoted to studying the influence of microplasma spraying (MPS) process parameters on the size of particles formed from tantalum (Ta) wire and their effect on the formation of the surface topography of Ta coatings on a Ti-6Al-4V alloy substrate, aimed at improving the biocompatibility of medical implant surfaces. Materials and methods: Using mathematical experimental design and scanning electron microscopy (SEM) analysis, the particle size was studied as a function of the MPS parameters. Surface roughness evaluation was performed using the Sa (Arithmetical Mean Height) and Sq (Root Mean Square Height) area roughness parameters. Results: The minimum particle size obtained was 101.0 ± 19.53 μm, while the maximum reached 282.0 ± 58.0 μm. Using processing parameters corresponding to the largest particles formation, coatings with a roughness of Sa = 15.28 ± 0.84 μm and Sq = 19.02 ± 0.82 μm were obtained. The results show that Ta particle size in the MPS process is governed by current intensity and wire feed rate: higher values lead to finer particles due to enhanced melt overheating and plasma jet effects, while lower values result in larger particles. Discussion: Optimization of these parameters enabled the formation of Ta coatings with developed surface topography and increased roughness, with Sa = 15.28 ± 0.84 μm, which is three times higher than after gas-abrasive treatment. Conclusion: The coatings show roughness favorable for bone ingrowth and osseointegration, however, pore optimization and further biocompatibility studies are needed to balance biological and mechanical properties.
Series on Biomechanics, Vol.40, No. 2 (2026), 3-14
DOI: 10.7546/SB.40.02.01.2026
Keywords: biocompatible coatings; Endoprostheses; tantalum (Ta); thermal plasma spraying
| References: (click to open/close) | [1] Medical Implants Market Analysis & Forecast: 2025-2032, 2025. Published In : Mar 2025 Code: CMI5723, 169. https://www.coherentmarketinsights.com/market-insight/medical-implants-market-5723 [2] Pabinger, C., Lothaller, H., Portner, N., Geissler, A., 2018. Projections of hip arthroplasty in OECD countries up to 2050, HIP Int. 28, 498-506. https://doi.org/10.1177/1120700018757940W [3] Wang, W., Yeung, K. W., 2017. Bone grafts and biomaterials substitutes for bone defect repair. A review Bioactive Materials 2,4, 224-247. URL: https://doi.org/10.1016/j.bioactmat.2017.05.007 [4] Galloway, R., Monnington, K., Moss, R., Donaldson, J., Skinner, J., McCulloch R., 2024. Satisfaction rates, function, and return to activity following young adult total hip arthroplasty. Bone Joint Open 5, 4, 304-311. https://doi:10.1302/2633-1462.54.BJO-2024-0005.R1 [5] Badhe, R. V., Akinfosile, O., Bijukumar, D., Barba, M., Mathew, M. T., 2021. Systemic toxicity eliciting metal ion levels from metallic implants and orthopedic devices. A mini review Toxicology letters 350, 213-224. https://doi.org/10.1016/j.toxlet.2021.07.004 [6] Tang, Z., Xie, Y., Yang, F., Huang, Y., Wang, C., Dai, K., Zheng, X., Zhang, X., 2013. Porous tantalum coatings prepared by vacuum plasma spraying enhance bmscs osteogenic differentiation and bone regeneration in vitro and in vivo. PLOS ONE 8,6, e66263. https://doi.org/10.1371/journal.pone.0066263 [7] Cui, J., Zhang, S., Huang, M., Mu, X., Hei, J., Yau, V., He, H., 2023. Micro-nano porous structured tantalum-coated dental implantspromote osteogenic activity in vitro and enhance osseointegration in vivo. Journal of Biomedical Materials Research Part A 111, 1358-1371. https://doi.org/10.1002/jbm.a.37538 [8] Ren, B., Wan, Y., Liu, C., Wang, H., Yu, M., Zhang, X., Huang, Y., 2021. Improved osseointegration of 3D printed Ti-6Al-4V implant with a hierarchical micro/nano surface topography: An in vitro and in vivo study. Materials Science and Engineering: C 118, 111505. https://doi.org/10.1016/j.msec.2020.111505 [9] Lu, R.-J., Wang, X., He, H.-X., E, L.-L., Li, Y., Zhang, G.-L., Li, C.-J., Ning, C.-Y., Liu, H.-C., 2019. Tantalum-incorporated hydroxyapatite coating on titanium implants: Its mechanical and in vitro osteogenic properties. Journal of Materials Science: Materials in Medicine 30,10, 111. https://doi.org/10.1007/s10856-019-6308-9 [10] Tantalum 73Ta: The essentials. physical properties. Crystal structures. WebElements. Available online: https://www.webelements.com/tantalum/ (accessed on 1 December 2023) [11] Wu, M.-Y., Zhao, M., Cai, Y., Yao, J.-G., Wang, P., Atrens, A., 2024. Recent advances in bio-functional Ta-based bone materials: materials design and bioactivity. International journal of extreme manufacturing 6, 6. https://doi.org/10.1088/2631-7990/ad7b03 [12] Vajapey, S. P., Shah, V. M., Li, M., Estok, D. M., 2024. Cementless fixation in total joint arthroplasty: factors impacting osseointegration. Journal of clinical orthopaedics and trauma 6, 102871, https://doi.org/10.1016/j.jcot.2024.102871 [13] Tuikampee, S., Chaijareenont, P., Rungsiyakull, P., Yavirach, A., 2024. Titanium Surface Modification Techniques to Enhance Osteoblasts and bone formation for dental implants: a narrative review on current advances. Metals 14, 1-28. https://doi.org10.3390/met14050515 [14] Pereira, R., Maia, P., Rios-Santos, J., Climent, M., Rios, B., Aparicio, C., Gil ,F. J., 2024. Influence of Titanium Surface Residual Stresses on Osteoblastic Response and Bacteria Colonization. Materials 17,7. 1626. https://doi.org/10.3390/ma17071626 [15] Babak, J., Xinnan, W., 2021. The effects of surface roughness on the functionality of Ti13Nb13Zr orthopedic implants. Biomedical Journal of Scientific Technical Research 38, 1, 9. https://doi.org/10.26717/bjstr.2021.38.006104 [16] Liu, W.; Liu, S.; Wang, L., 2019. Surface modification of biomedical titanium alloy: micromorphology, microstructure evolution and biomedical applications. Coatings 9,4, 249. https://doi.org/10.3390/coatings9040249 [17] Jiale, J., Dongyu, W., Hu, Q., Chengxin, R., Yiqi, Y., Dongdong, L., Guohua, W., Xiaobo, Z., Yihe, H., Pengfei, L., 2025. Precision pore structure optimization of additive manufacturing porous tantalum scaffolds for bone regeneration: A proof-of-concept study. Biomaterials 313, 122756. https://doi.org/10.1016/j.biomaterials.2024.122756 [18] Hu, F., Fan, X., Peng, F., Yan, X., Song, J., Deng, C., Liu, M., Zeng, D., & Ning, C., 2022. Characterization of porous titanium-hydroxyapatite composite biological coating on polyetheretherketone (PEEK) by vacuum plasma spraying. Coatings 12(4), 433. https://doi.org/10.3390/coatings12040433 [19] Kuibida, V., Kokhanets, P., Lopatynska, V., 2021. Mechanism of strengthening the skeleton using plyometrics. Journal of Physical Education and Sport 21, 3, 1309-1316. https://doi.org/10.7752/jpes.2021.03166 [20] Moltasov, A., Dyman, M., Kaliuzhnyi, S., Mossokovska, I., Voinarovych, S., Kyslytsia, O., Koytchev, E., 2022. Dependence of the elasticity modulus of microplasma coatings made of titanium grade VT1-00 and zirconium grade KTC-110 on their porosity. Series on Biomechanics 36, 2, 141-152. https://doi.org/10.7546/sb.36.2022.02.14 [21] Yang, Z., Liu, D., Luo, C., Zhou, K., Wang, K., Li, X., Li, X., Zhang, X., 2025. The effect of powder particle size on microstructure, mechanical and tribological properties of APS-IN718 coatings for repair applications. Surface and Coatings Technology 512, 132430. https://doi.org/10.1016/j.surfcoat.2025.132430. [22] Nguyen, T.-L., Pham, A.-V., Nguyen, V.-T., Cheng, T.-C., 2024. Impact of hydroxyapatite powder particle size on mechanical and electrochemical properties of flame-sprayed coatings for titanium implants. Journal of Thermal Spray Technology 33, 1, 2463-2474. https://doi.org/10.1007/s11666-024-01831-2 [23] Yushenko, K., Borisov, Y., Voynarovych, S., Fomakin, O., 2004. Plasmatron for spraying of coatings. WO2004010747A1, Google Patents. [24] Montgomery, D. C., Runger, G. C., Hubele, N. F., 2011. Engineering statistics. Wiley & Sons, Incorporated, John, 512. [25] Alontseva, D., Ghassemieh, E., Voinarovych, S., Russakova, A., Kyslytsia, O., Polovetskyi, Y., Toxanbayeva, A., 2019. Characterisation of the microplasma spraying of biocompatible coating of titanium. Journal of Microscopy 279, 3, 148-157. https://doi.org/10.1111/jmi.12849 [26] Voinarovych, S., Alontseva, D., Kyslytsia, O., Kaliuzhnyi, S., Khozhanov, A., Krasavin, A., Kolesnikova, T., 2021. Fabrication and characterization of Zr microplasma sprayed coatings for medical applications. Advances in materials science 21, 2, 93-105. https://doi.org/10.2478/adms-2021-0013 [27] BS EN ISO 25178-600:2019; Geometrical Product Specifications (GPS)-Surface Texture: Areal. ISO: Geneva, Switzerland, 2019. [28] Lewallen, E. A., Trousdale, W. H., Thaler, R., Yao, J. J., Xu, W., Denbeigh, J. M., Nair, A., Kocher, J. P., Dudakovic, A., Berry, D. J., Cohen, R. C., Abdel, M. P., Lewallen, D. G., van Wijnen, A. J., 2021. Surface roughness of titanium orthopedic implants alters the biological phenotype of human mesenchymal stromal cells. Tissue engineering. Part A 27(23-24), 1503-1516. https://doi.org/10.1089/ten.TEA.2020.0369 [29] Voinarovych, S., Maksimov, S., Kaliuzhnyi, S., Kyslytsia, O., Safarova, Y., Alontseva, D., 2025. Functional assessment of microplasma-sprayed hydroxyapatite-zirconium bilayer coatings: mechanical and biological perspectives. Materials 18, 14 , 3405. https://doi.org/10.3390/ma18143405 [30] Borsari, V., Giavaresi, G., Fini, M., Torricelli, P., Salito, A., Chiesa, R., Chiusoli, L., Volpert, A., Rimondini, L., Giardino, R., 2005. Physical characterization of different-roughness titanium surfaces, with and without hydroxyapatite coating, and their effect on human osteoblast-like cells. Journal of Biomedical Materials Research Part B: Applied Biomaterials 75, 2, 359-368. https://doi.org/10.1002/jbm.b.30313 [31] Civantos, A., Giner, M., Trueba, P., Lascano, S., Montoya-García, M.-J., Arévalo, C., Vázquez, M. Á., Allain, J. P., Torres, Y., 2020. In vitro bone cell behavior on porous titanium samples: influence of porosity by loose sintering and space holder techniques. Metals 10, 5, 696. https://doi.org/10.3390/met10050696 [32] Wu, Y., Wan, K., Lu, J., Yuan, C., Cui, Y., Duan, R., Yu, J., 2025. Research progress on surface modification of titanium implants. Coatings 15, 2, 229. https://doi.org/10.3390/coatings15020229 [33] Nikam, N., Shenoy B, S., K N, C., Keni, L. G., Shetty, S., Bhat N, S., 2025. Advancements in surface coatings for enhancing longevity in hip implants: A review. Prosthesis 7, 1, 21. https://doi.org/10.3390/prosthesis7010021 [34] Yao, Y. T., Yang, Y., Ye, Q., Cao, S. S., Zhang, X. P., Zhao, K., Jian, Y., 2021. Effects of pore size and porosity on cytocompatibility and osteogenic differentiation of porous titanium. Journal of materials science. Materials in medicine 32, 6, 72. https://doi.org/10.1007/s10856-021-06548-0 [35] Wang, R., Ni, S., Ma, L., Li, M., 2022. Porous construction and surface modification of titanium-based materials for osteogenesis: A review. Frontiers in bioengineering and biotechnology 10, 973297. https://doi.org/10.3389/fbioe.2022.973297 [36] Martinez-Marquez, D., Delmar, Y., Sun, S., Stewart, R. A., 2020. Exploring macroporosity of additively manufactured titanium metamaterials for bone regeneration with quality by design: A systematic literature review. Materials, 13, 21, 4794. https://doi.org/10.3390/ma13214794 [37] Prasad, C. D., Tiwari, A., Suryawanshi, S. R., Dileep, B. P., Gowda, A. C., Masum, H., Dutt, K. M., Sunil Prashanth Kumar, S. та Bavan, S., 2025. Overview of thermal spray coating on additive manufacturing. Progress in Additive Manufacturing 10, 4327-4347. https://doi.org/10.1007/s40964-024-00869-6. [38] Gao, H., Nie, X., Xu, J., Deng, S., Liao, H., Zhang, C., 2026. Machine learning in thermal spraying: applications, challenges, and future perspectives. Surface Science and Technology 4, 1. https://doi.org/10.1007/s44251-025-00113-5.
|
|
| Date published: 2026-07-17
(Price of one pdf file: 25.00 EUR)