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Sub-nanoscale polishing of single crystal diamond(100) and the chemical behavior of nanoparticles during the polishing process

机译:单晶金刚石(100)的亚纳米级抛光和纳米粒子的抛光过程中的化学行为

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摘要

Single crystal diamond is widely utilized in various high-tech fields due to its many excellent properties, but poor surface quality will affect its applications. Therefore, increased ability to process high-quality diamond will dramatically expand its applications in high-tech fields. A combination of mechanical grinding and chemical mechanical polishing was utilized to propose a new room-temperature polishing method, by means of abrasive particles and transition metal ions. This process activated the diamond surface and resulted in an ultra-smooth surface of Ra 0.452 tun and rms 0.572 nm (measurement area: 283 mu m x 212 mu m), as well as a monoatomic surface layer of Ra 0.115 nm and rms 0.145 tun in a local region (measurement area: 500 nm x 500 nm). The chemical behavior of nanoparticles during the polishing process was studies via reactive force field molecular dynamics simulation. The surface chemical behaviors of both abrasive particles and diamond substrate during the polishing process were elucidated by combining experiments with simulations and the diamond removal mechanism and activated mechanism of Fe2+ were explored. This work provides a theoretical basis and technical support for the ultra-precision machining of single crystal diamond.
机译:由于其许多优异的性能,单晶钻石广泛用于各种高科技领域,但表面质量差会影响其应用。因此,加工高质量钻石的能力提高,将大大扩展其在高科技领域的应用。利用机械研磨和化学机械抛光的组合来提出新的室温抛光方法,通过磨料颗粒和过渡金属离子。该方法激活了金刚石表面,并导致RA 0.452隧道的超光滑表面,RMS 0.572nm(测量面积:283μmx212μm),以及Ra 0.115nm和RMS 0.145的单原子组表面层局部区域(测量面积:500nm x 500nm)。在抛光过程中纳米颗粒的化学行为是通过反应力场分子动力学模拟的研究。通过将实验与模拟的实验组合,探索了磨料颗粒和金刚石衬底的表面化学行为,并探讨了Fe2 +的金刚石去除机理和Fe2 +的活化机制。这项工作为单晶金刚石的超精密加工提供了理论基础和技术支持。

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