Institute for Bioengineering, School of Engineering, The University of Edinburgh, King's Buildings, Mayfield Road, Edinburgh EH9 3JL, UK.
Center of Super-Diamond and Advanced Films (COSDAF) and Department of Physics and Materials Science, City University of Hong Kong, Hong Kong SAR, China.
Chem Soc Rev. 2017 Feb 6;46(3):734-760. doi: 10.1039/c6cs00109b.
Diamond features an attractive combination of outstanding mechanical, optical, thermal and electrical properties; tunable surface characteristics; and unprecedented biocompatibility. Additionally, diamond can possess unique nitrogen-vacancy emission centers that are highly photostable and extremely sensitive to magnetic fields, temperatures, ion concentrations, and spin densities. With these inherent merits, diamond in various nanoscale configurations has demonstrated a variety of distinctive applications in a broad range of fields. In particular, research on diamond nanoparticles (0-dimensional structures) and arrays of diamond nanoneedles/nanowires (1-dimensional structures) has witnessed important and exciting progress in recent years. Here, we systematically review the superior properties of diamond nanomaterials and the nitrogen-vacancy centers they contain as well as their uses in biomedical applications, including biosensing, bioimaging and drug delivery. Moreover, systematic studies of the biocompatibility and toxicity of diamond nanostructures, which constitute an important issue for the biomedical applications of diamond that has not yet been thoroughly addressed in previous reviews, are also discussed. Finally, we present our insights into the key issues concerning these diamond nanomaterials and their future development for applications.
金刚石具有优异的机械、光学、热学和电学性能、可调表面特性以及前所未有的生物相容性等吸引人的特性。此外,金刚石可以具有独特的氮空位发射中心,这些中心具有高度的光稳定性和对磁场、温度、离子浓度和自旋密度的极高灵敏度。由于这些固有优点,各种纳米级金刚石结构在广泛的领域中展示了多种独特的应用。特别是,近年来,金刚石纳米颗粒(零维结构)和金刚石纳米针/纳米线阵列(一维结构)的研究取得了重要而令人兴奋的进展。在这里,我们系统地综述了金刚石纳米材料及其含有的氮空位中心的优异性能及其在生物医学应用中的用途,包括生物传感、生物成像和药物输送。此外,还讨论了金刚石纳米结构的生物相容性和毒性的系统研究,这是金刚石在生物医学应用中一个重要问题,在以前的综述中尚未得到彻底解决。最后,我们提出了对这些金刚石纳米材料及其未来发展的关键问题的见解,以应用于这些材料。