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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Highly crystalline Fe2GeS4 nanocrystals: green synthesis and their structural and optical characterization
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Highly crystalline Fe2GeS4 nanocrystals: green synthesis and their structural and optical characterization

机译:高结晶Fe2GeS4纳米晶体:绿色合成及其结构和光学表征

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The olivine Fe2GeS4 compound has attracted much attention as a thermodynamically stable derivative of pyrite FeS2, which has been studied extensively as an earth-abundant light-absorbing candidate material. Nevertheless, reports on nanocrystalline Fe2GeS4 and its optoelectronic properties are limited. Herein, Fe2GeS4 nanocrystals are synthesized via a solvent-free mechanochemical process. This process not only reduces the synthesis time, but also avoids the use of hazardous solvents, thereby mitigating environmental concerns. The crystallinity of the synthesized nanocrystals is significantly enhanced by a post-heat treatment in a sulfur-containing atmosphere, showing no phase decomposition. Lattice-resolved micrographs reveal that the post-annealed nanocrystals have a hexagonal-faceted platelet structure with (002) base planes. The oxide layer near the surface region is removed by the post-annealing process, most likely due to the replacement of oxygen with sulfur in the controlled atmosphere. The post-annealed Fe2GeS4 nanocrystals clearly exhibit an optical band gap of 1.43 eV and near-band-edge photoluminescent emission at 1.41 eV. This is the first experimental demonstration of the Fe2GeS4 nanocrystals having optoelectronic properties that are suitable for solar applications.
机译:橄榄石Fe2GeS4化合物作为黄铁矿FeS2的热力学稳定衍生物而备受关注,已广泛研究为地球上富集光的候选材料。尽管如此,有关纳米晶Fe2GeS4及其光电性能的报道仍然有限。在此,Fe 2 GeS 4纳米晶体是通过无溶剂机械化学方法合成的。该方法不仅减少了合成时间,而且避免了使用有害溶剂,从而减轻了环境问题。通过在含硫气氛中的后热处理,合成的纳米晶体的结晶度显着提高,没有相分解。晶格分辨显微照片显示,退火后的纳米晶体具有带(002)基面的六边形薄片状结构。通过后退火工艺去除表面区域附近的氧化物层,这很可能是由于在受控气氛中用硫替代了氧气。退火后的Fe2GeS4纳米晶体清楚地显示出1.43 eV的光学带隙和1.41 eV的近带边缘光致发光。这是具有适合太阳能应用的光电特性的Fe2GeS4纳米晶体的第一个实验演示。

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