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Probing the Nanostructure of Neutron-Irradiated Diamond Using Raman Spectroscopy

机译:用拉曼光谱探测中子辐照金刚石的纳米结构

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摘要

Disordering of crystal lattice induced by irradiation with fast neutrons and other high-energy particles is used for the deep modification of electrical and optical properties of diamonds via significant nanoscale restructuring and defects engineering. Raman spectroscopy was employed to investigate the nature of radiation damage below the critical graphitization level created when chemical vapor deposition and natural diamonds are irradiated by fast neutrons with fluencies from 1 × 10 to 3 × 10 cm and annealed at the 100–1700 °C range. The significant changes in the diamond Raman spectra versus the neutron-irradiated conditions are associated with the formation of intrinsic irradiation-induced defects that do not completely destroy the crystalline feature but decrease the phonon coherence length as the neutron dose increases. It was shown that the Raman spectrum of radiation-damaged diamonds is determined by the phonon confinement effect and that the boson peak is present in the Raman spectra up to annealing at 800–1000 °C. Three groups of defect-induced bands (first group = 260, 495, and 730 cm ; second group = 230, 500, 530, 685, and 760 cm ; and third group = 335, 1390, 1415, and 1740 cm ) were observed in Raman spectra of fast-neutron-irradiated diamonds.
机译:通过快速中子和其他高能粒子的辐照引起的晶格失序,通过显着的纳米级重构和缺陷工程,被用于钻石的电学和光学特性的深层修饰。拉曼光谱法用于研究在快速中子以1×10至3×10 cm的通量辐照化学气相沉积和天然钻石并在100–1700°C范围内退火时所产生的低于临界石墨化水平的辐射损伤的性质。 。金刚石拉曼光谱相对于中子辐照条件的显着变化与本征辐照引起的缺陷的形成有关,这些缺陷不会完全破坏晶体特征,但会随着中子剂量的增加而降低声子相干长度。结果表明,受辐射破坏的钻石的拉曼光谱是由声子约束效应决定的,玻色子峰存在于拉曼光谱中,直至在800–1000°C退火为止。观察到三组缺陷诱发带(第一组= 260、495和730 cm;第二组= 230、500、530、685和760 cm;第三组= 335、1390、1415和1740 cm)快速中子辐照钻石的拉曼光谱中的光谱。

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