Phan ThiThuHa, Jones John E, Liao Yixuan, Yu Qingsong, Chen Meng
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO 65211, USA.
Nanova, Inc., 1601 S Providence Rd, Columbia, MO 65211, USA.
Materials (Basel). 2024 Jul 26;17(15):3699. doi: 10.3390/ma17153699.
The objective of this study was to evaluate the coating integrity performance and corrosion protection property of trimethylsilane (TMS) plasma nanocoatings that were directly deposited onto cobalt chromium (CoCr) L605 cardiovascular stents. Hydrophilic surfaces were achieved for the TMS plasma nanocoatings that were deposited onto the coronary stents through NH/O (2:1 molar ratio) plasma post-treatment. With a coating thickness of approximately 20-25 nm, the TMS plasma nanocoatings were highly durable and able to resist delamination and cracking from crimping and expansion by a Model CX with a J-Crimp Station. The stent surface that was evaluated by Scanning Electron Microscopy (SEM) and Energy-Dispersive X-ray Spectroscopy (EDS) showed no indications of pitting, corrosion, or adsorption products on either the luminal or abluminal surfaces of the stents, in contrast to the uncoated stent surface. The TMS plasma nanocoatings significantly enhanced the stent's corrosion resistance in immersion experiments that followed the ASTM F2129-15 corrosion protocol, evident in the increase of the open circuit potential (OCP) from 0.01 V for the uncoated L605 stent to 0.18 V for the plasma-nanocoated L605 stent, reducing potential cytotoxic metal ion release. Cyclic polarization (CP) curves show that the corrosion rate (density level) observed in plasma-nanocoated L605 stents was approximately half an order of magnitude lower than that of the uncoated stents, indicating improved corrosion protection of the stents. CP curves of the TMS plasma-nanocoated stents with different coating thicknesses show that, in the range of 20-65 nm, the coating thickness does not result in any difference in the corrosion resistance of the stents.
本研究的目的是评估直接沉积在钴铬(CoCr)L605心血管支架上的三甲基硅烷(TMS)等离子体纳米涂层的涂层完整性性能和耐腐蚀性能。通过NH/O(摩尔比2:1)等离子体后处理沉积在冠状动脉支架上的TMS等离子体纳米涂层实现了亲水性表面。TMS等离子体纳米涂层的厚度约为20 - 25纳米,具有很高的耐久性,能够抵抗带有J型压接站的CX型号的压接和扩张所导致的分层和开裂。与未涂层的支架表面相比,通过扫描电子显微镜(SEM)和能量色散X射线光谱(EDS)评估的支架表面在支架的管腔或管腔外表面均未显示出点蚀、腐蚀或吸附产物的迹象。在遵循ASTM F2129 - 15腐蚀协议的浸泡实验中,TMS等离子体纳米涂层显著提高了支架的耐腐蚀性,这在开路电位(OCP)从未涂层的L605支架的0.01 V增加到等离子体纳米涂层的L605支架的0.18 V中明显体现,减少了潜在的细胞毒性金属离子释放。循环极化(CP)曲线表明,在等离子体纳米涂层的L605支架中观察到的腐蚀速率(密度水平)比未涂层的支架低约半个数量级,表明支架的耐腐蚀性能得到了改善。不同涂层厚度的TMS等离子体纳米涂层支架的CP曲线表明,在20 - 65纳米范围内,涂层厚度不会导致支架耐腐蚀性能的任何差异。