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通过低压/高温退火增强化学气相沉积单晶金刚石的光学性能。

Enhanced optical properties of chemical vapor deposited single crystal diamond by low-pressure/high-temperature annealing.

作者信息

Meng Yu-fei, Yan Chih-shiue, Lai Joseph, Krasnicki Szczesny, Shu Haiyun, Yu Thomas, Liang Qi, Mao Ho-kwang, Hemley Russell J

机构信息

Geophysical Laboratory, Carnegie Institution of Washington, 5251 Broad Branch Road NW, Washington, DC 20015, USA.

出版信息

Proc Natl Acad Sci U S A. 2008 Nov 18;105(46):17620-5. doi: 10.1073/pnas.0808230105. Epub 2008 Nov 12.

Abstract

Single crystal diamond produced by chemical vapor deposition (CVD) at very high growth rates (up to 150 microm/h) has been successfully annealed without graphitization at temperatures up to 2200 degrees C and pressures <300 torr. Crystals were annealed in a hydrogen environment by using microwave plasma techniques for periods of time ranging from a fraction of minute to a few hours. This low-pressure/high-temperature (LPHT) annealing enhances the optical properties of this high-growth rate CVD single crystal diamond. Significant decreases are observed in UV, visible, and infrared absorption and photoluminescence spectra. The decrease in optical absorption after the LPHT annealing arises from the changes in defect structure associated with hydrogen incorporation during CVD growth. There is a decrease in sharp line spectral features indicating a reduction in nitrogen-vacancy-hydrogen (NVH(-)) defects. These measurements indicate an increase in relative concentration of nitrogen-vacancy (NV) centers in nitrogen-containing LPHT-annealed diamond as compared with as-grown CVD material. The large overall changes in optical properties and the specific types of alterations in defect structure induced by this facile LPHT processing of high-growth rate single-crystal CVD diamond will be useful in the creation of diamond for a variety of scientific and technological applications.

摘要

通过化学气相沉积(CVD)以非常高的生长速率(高达150微米/小时)生产的单晶金刚石,已成功在高达2200摄氏度的温度和<300托的压力下进行退火而未石墨化。晶体在氢气环境中通过微波等离子体技术进行退火,退火时间从几分钟到几小时不等。这种低压/高温(LPHT)退火增强了这种高生长速率CVD单晶金刚石的光学性能。在紫外、可见和红外吸收以及光致发光光谱中观察到显著下降。LPHT退火后光学吸收的下降源于与CVD生长过程中氢掺入相关的缺陷结构变化。尖锐线光谱特征的减少表明氮-空位-氢(NVH(-))缺陷减少。这些测量表明,与生长的CVD材料相比,含氮LPHT退火金刚石中氮-空位(NV)中心的相对浓度增加。这种高生长速率单晶CVD金刚石的简便LPHT处理所引起的光学性能的总体巨大变化以及缺陷结构的特定类型改变,将有助于制造用于各种科学和技术应用的金刚石。

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