首页> 外文期刊>Journal of Colloid and Interface Science >Colloidally stable selenium@copper selenide core@shell nanoparticles as selenium source for manufacturing of copper-indium-selenide solar cells
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Colloidally stable selenium@copper selenide core@shell nanoparticles as selenium source for manufacturing of copper-indium-selenide solar cells

机译:胶体稳定的硒@硒化硒核@壳纳米颗粒作为硒源,用于制造铜铟硒化物太阳能电池

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摘要

Selenium nanoparticles with diameters of 100-400 nm are prepared via hydrazine-driven reduction of selenious acid. The as-prepared amorphous, red selenium (a-Se) particles were neither a stable phase nor were they colloidally stable. Due to phase transition to crystalline (trigonal), grey selenium (t-Se) at or even below room temperature, the particles merged rapidly and recrystallized as micronsized crystal needles. As a consequence, such Se particles were not suited for layer deposition and as a precursor to manufacture thin-film CIS (copper indium selenide/CuInSe_2) solar cells. To overcome this restriction, Se@CuSe core@shell particles are presented here. For these Se@CuSe core@shell nanoparticles, the phase transition a-Se→t-Se is shifted to temperatures higher than 100 °C. Moreover, a spherical shape of the particles is retained even after phase transition. Composition and structure of the Se@CuSe core@shell nanostructure are evidenced by electron microscopy (SEM/STEM), DLS, XRD, FT-IR and line-scan EDXS. As a conceptual study, the newly formed Se@CuSe core@shell nanostructures with CuSe acting as a protecting layer to increase the phase-transition temperature and to improve the colloidal stability were used as a selenium precursor for manufacturing of thin-film CIS solar cells and already lead to conversion efficiencies up to 3%.
机译:通过肼驱动的亚硒酸还原制备直径为100-400 nm的硒纳米颗粒。所制备的非晶态红色硒(a-Se)颗粒既不是稳定相,也不是胶体稳定的。由于在室温或什至低于室温下相转变为晶体(三角形),灰色硒(t-Se),颗粒迅速融合并重结晶为微晶针。结果,这样的Se颗粒不适合用于层沉积并且不适合于制造薄膜CIS(硒化铜铟/ CuInSe_2)太阳能电池。为了克服此限制,此处介绍了Se @ CuSe核@壳粒子。对于这些Se @ CuSe核@壳纳米粒子,相变a-Se→t-Se转变为高于100°C的温度。此外,即使在相变之后也保持球形的颗粒形状。电子显微镜(SEM / STEM),DLS,XRD,FT-IR和线扫描EDXS证明了Se @ CuSe核@壳纳米结构的组成和结构。作为一项概念研究,以CuSe为保护层以提高相变温度并改善胶体稳定性的新形成的Se @ CuSe核@壳纳米结构被用作制造CIS薄膜太阳能电池的硒前体。并且已经使转换效率提高了3%。

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