Pandey Prem C, Shukla Shubhangi, Pandey Govind, Narayan Roger J
Department of Chemistry, Indian Institute of Technology (BHU), Varanasi-221005, India.
Department of Pediatrics, King George Medical University, Lucknow-226003, India.
Nanotechnology. 2021 Mar 26;32(13):132001. doi: 10.1088/1361-6528/abd2e7.
Nanostructured forms of diamond have been recently considered for use in a variety of medical devices due to their unusual biocompatibility, corrosion resistance, hardness, wear resistance, and electrical properties. This review considers several routes for the synthesis of nanostructured diamond, including chemical vapor deposition, hot filament chemical vapor deposition, microwave plasma-enhanced chemical vapor deposition, radio frequency plasma-enhanced chemical vapor deposition, and detonation synthesis. The properties of nanostructured diamond relevant to medical applications are described, including biocompatibility, surface modification, and cell attachment properties. The use of nanostructured diamond for bone cell interactions, stem cell interactions, imaging applications, gene therapy applications, and drug delivery applications is described. The results from recent studies indicate that medical devices containing nanostructured diamond can provide improved functionality over existing materials for the diagnosis and treatment of various medical conditions.
由于其独特的生物相容性、耐腐蚀性、硬度、耐磨性和电学性能,纳米结构形式的金刚石最近被考虑用于各种医疗设备。本综述探讨了几种合成纳米结构金刚石的途径,包括化学气相沉积、热丝化学气相沉积、微波等离子体增强化学气相沉积、射频等离子体增强化学气相沉积和爆轰合成。描述了与医疗应用相关的纳米结构金刚石的特性,包括生物相容性、表面改性和细胞附着特性。还介绍了纳米结构金刚石在骨细胞相互作用、干细胞相互作用、成像应用、基因治疗应用和药物递送应用中的使用情况。最近的研究结果表明,含有纳米结构金刚石的医疗设备在诊断和治疗各种医疗状况方面比现有材料具有更好的功能。