D W Boukhvalov, Osipov V Yu, Takai K
College of Science, Institute of Materials Physics and Chemistry, Nanjing Forestry University, Nanjing 210037, P. R. China.
Ioffe Institute, Polytechnicheskaya 26, St. Petersburg 194021, Russia.
Phys Chem Chem Phys. 2021 Jul 14;23(27):14592-14600. doi: 10.1039/d0cp05914e.
Interactions between interior substitutional nitrogen defects and surface unsaturated dangling bonds in synthetic nanodiamonds of ∼25 nm size were explored experimentally and theoretically. The experimental results demonstrate the disappearance of the specific paramagnetism of nitrogen centers in the smallest nanoparticles isolated after processing large micron diamonds in a ball mill, accompanied by the formation of unsaturated surface dangling bonds and internal defects. First principles modelling confirms the vanishing of the magnetic moments related with nitrogen centers even for distances from the surface defects greater than 1 nm. To understand this effect, we consider a bond reconstruction scheme with the formation of several carbon-carbon double bonds in the area between the interior and surface point defects. The scheme is in agreement with the changes in electron density through the distance between the two defects. The developed approach can be used to describe the interactions between various defects in carbon-based systems.
对尺寸约为25纳米的合成纳米金刚石内部替代氮缺陷与表面不饱和悬空键之间的相互作用进行了实验和理论研究。实验结果表明,在球磨机中对大尺寸微米级金刚石进行处理后分离出的最小纳米颗粒中,氮中心的特定顺磁性消失,同时伴随着不饱和表面悬空键和内部缺陷的形成。第一性原理建模证实,即使与表面缺陷的距离大于1纳米,与氮中心相关的磁矩也会消失。为了解释这种效应,我们考虑了一种键重构方案,即在内部和表面点缺陷之间的区域形成几个碳-碳双键。该方案与通过两个缺陷之间距离的电子密度变化一致。所开发的方法可用于描述碳基系统中各种缺陷之间的相互作用。