Jackson N R, Erasmus R M, Hearne G R
School of Physics and DST-NRF Centre of Excellence in Strong Materials, University of the Witwatersrand, Private Bag 3, Wits, Johannesburg-Gauteng 2050, South Africa.
Rev Sci Instrum. 2010 Jul;81(7):073903. doi: 10.1063/1.3455812.
Methodology has been developed so as to attain routine extreme conditions as high as 10-15 GPa in a gem anvil optical pressure cell using hand (manual) processed gem anvils. The anvils polished by a simplified hand held tool are inexpensive single crystal cubic zirconia (CZ) gems that have various optical advantages over diamond anvils. Appreciable pressures are attained with culet and corresponding sample cavity dimensions that are relatively convenient to load with sample material. Some technical details are provided as regards the simplified manual fabrication process, thus emphasizing the relative ease and cost effectiveness of the hand polishing technique for fabricating such high pressure anvils. Raman spectroscopy measurements, in triple subtractive mode with a confocal pinhole geometry, are used to exemplify the usefulness of the CZ gem anvil cell methodology in pressure tuning experiments. This is particularly convenient for conventional low wave-number (lattice mode regime) Raman high pressure studies, which have not been reported previously in this context. Various other applications of such anvils are suggested.
已经开发出一种方法,以便在使用手工(手动)加工的宝石砧的宝石砧光学压力池中达到高达10-15 GPa的常规极端条件。用简化的手持工具抛光的砧是廉价的单晶立方氧化锆(CZ)宝石,与金刚石砧相比具有各种光学优势。通过相对便于装载样品材料的台面和相应的样品腔尺寸可获得可观的压力。提供了关于简化的手工制造过程的一些技术细节,从而强调了用于制造这种高压砧的手工抛光技术的相对简便性和成本效益。采用共焦针孔几何结构的三重减法模式进行拉曼光谱测量,以例证CZ宝石砧池方法在压力调谐实验中的实用性。这对于传统的低波数(晶格模式区域)拉曼高压研究特别方便,此前在这方面尚未见报道。还提出了这种砧的各种其他应用。