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首页> 外文期刊>Journal of Materials Science >Allotropic phase transformation and photoluminescence of germanium nanograins processed by high-pressure torsion
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Allotropic phase transformation and photoluminescence of germanium nanograins processed by high-pressure torsion

机译:高压扭转作用对锗纳米颗粒的同素异形相变和光致发光

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We report on allotropic phase transformation and nanograin refinement of Ge by severe plastic deformation using high-pressure torsion (HPT) under a pressure of 24 GPa. No appreciable formation of metastable phases occurred under compression prior to torsion, while a diamond cubic Ge-I phase and a tetragonal Ge-III phase were observed in the HPT-processed samples. The formation of the Ge-III phase was enhanced by introduction of shear strain. TEM observations revealed that HPT-processed samples consisted of micro- and nanograins. It was indicated that grain refinement occurred due to the introduction of high density of lattice defects in metallic Ge-II during HPT processing, and then Ge-II transformed not only back to Ge-I but also to metastable Ge-III upon unloading. The Ge-III phase reversely transformed to Ge-I by intense Ar-ion laser irradiation or by thermal annealing. No appreciable photoluminescence (PL) was observed from the HPT-processed sample, while a broad PL peak in the range of 600-800 nm appeared after intense laser irradiation. A similar PL peak was also observed from thermally annealed samples. These results suggest that the appearance of the PL peak arises from Ge-I nanograins.
机译:我们报告了在24 GPa压力下使用高压扭力(HPT)通过严重的塑性变形对Ge进行的同素异形相变和纳米晶粒细化的过程。在扭转之前,在压缩下没有明显形成亚稳相,而在HPT处理的样品中观察到了菱形立方Ge-I相和四方Ge-III相。引入剪切应变可增强Ge-III相的形成。 TEM观察表明,HPT处理过的样品由微米和纳米颗粒组成。结果表明,晶粒细化的发生是由于在HPT加工过程中在金属Ge-II中引入了高密度的晶格缺陷,然后Ge-II不仅在卸载时转变回Ge-I,而且还转变为亚稳态Ge-III。 Ge-III相通过强Ar离子激光辐照或通过热退火反向转变为Ge-I。从HPT处理的样品中未观察到明显的光致发光(PL),而在强激光照射后出现了600-800 nm范围内的宽PL峰。从热退火样品中也观察到类似的PL峰。这些结果表明,PL峰的出现源自Ge-I纳米颗粒。

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