Jian Yinghao, Zhang Jingxian, Yang Chen, Qi Luhe, Wang Xiaohui, Deng Hongbing, Shi Xiaowen
School of Resource and Environmental Science, Hubei Engineering Center of Natural Polymers-Based Medical Materials, Hubei Biomass-Resource Chemistry and Environmental Biotechnology Key Laboratory, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy, Wuhan University, Wuhan 430079, China.
State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, China.
Colloids Surf B Biointerfaces. 2023 May;225:113227. doi: 10.1016/j.colsurfb.2023.113227. Epub 2023 Feb 28.
Biocompatible coatings that can protect metal implants have great potential in tissue engineering. In this work, MWCNT/chitosan composite coatings with hydrophobic-hydrophilic asymmetric wettability were facilely prepared by one-step in situ electrodeposition. The resultant composite coating exhibits excellent thermal stability and mechanical strength (0.76 MPa), benefiting from the compact internal structure. The thickness of the coating can be controlled precisely by the amounts of transferred charges. The MWCNT/chitosan composite coating demonstrates a lower corrosion rate due to its hydrophobicity and compact internal structure. Compared with exposed 316 L stainless steel, its corrosion rate is reduced by two orders of magnitude from 3.004 × 10 mm/yr to 5.361 × 10 mm/yr. The content of iron released from 316 L stainless steel into the simulated body fluid drops to 0.1 mg/L under the protection of the composite coating. In addition, the composite coating enables efficient calcium enrichment from simulated body fluids and promotes the formation of bioapatite layers on the coating surface. This study contributes to furthering the practical application of chitosan-based coatings in implant anticorrosion.
能够保护金属植入物的生物相容性涂层在组织工程中具有巨大潜力。在本工作中,通过一步原位电沉积简便地制备了具有疏水 - 亲水不对称润湿性的多壁碳纳米管/壳聚糖复合涂层。所得复合涂层表现出优异的热稳定性和机械强度(0.76兆帕),这得益于其致密的内部结构。涂层厚度可通过转移电荷量精确控制。多壁碳纳米管/壳聚糖复合涂层因其疏水性和致密的内部结构而具有较低的腐蚀速率。与暴露的316L不锈钢相比,其腐蚀速率从3.004×10毫米/年降低了两个数量级至5.361×10毫米/年。在复合涂层的保护下,从316L不锈钢释放到模拟体液中的铁含量降至0.1毫克/升。此外,复合涂层能够从模拟体液中高效富集钙,并促进涂层表面生物磷灰石层的形成。本研究有助于推动基于壳聚糖的涂层在植入物防腐方面的实际应用。