Olivier E J, Neethling J H, Kroon R E, Naidoo S R, Allen C S, Sawada H, van Aken P A, Kirkland A I
Centre for HRTEM, Physics Department, Nelson Mandela University, Port Elizabeth, South Africa.
Department of Physics, University of the Free State, Bloemfontein, South Africa.
Nat Mater. 2018 Mar;17(3):243-248. doi: 10.1038/s41563-018-0024-6. Epub 2018 Feb 21.
In the past decades, many efforts have been devoted to characterizing {001} platelet defects in type Ia diamond. It is known that N is concentrated at the defect core. However, an accurate description of the atomic structure of the defect and the role that N plays in it is still unknown. Here, by using aberration-corrected transmission electron microscopy and electron energy-loss spectroscopy we have determined the atomic arrangement within platelet defects in a natural type Ia diamond and matched it to a prevalent theoretical model. The platelet has an anisotropic atomic structure with a zigzag ordering of defect pairs along the defect line. The electron energy-loss near-edge fine structure of both carbon K- and nitrogen K-edges obtained from the platelet core is consistent with a trigonal bonding arrangement at interstitial sites. The experimental observations support an interstitial aggregate mode of formation for platelet defects in natural diamond.
在过去几十年里,人们致力于表征Ia型钻石中的{001}血小板缺陷。已知氮集中在缺陷核心。然而,缺陷的原子结构以及氮在其中所起的作用仍不清楚。在此,我们利用像差校正透射电子显微镜和电子能量损失谱确定了天然Ia型钻石中血小板缺陷内的原子排列,并将其与一个普遍的理论模型相匹配。该血小板具有各向异性的原子结构,沿着缺陷线缺陷对呈锯齿状排列。从血小板核心获得的碳K边和氮K边的电子能量损失近边精细结构与间隙位置的三角键合排列一致。实验观察结果支持天然钻石中血小板缺陷的间隙聚集形成模式。