Green Synthesis of Nanocrystalline Cu2ZnSnS4 Powder Using Hydrothermal Route

S. Verma, V. Agrawal, K. Jain, R. Pasricha, S. Chand
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引用次数: 24

Abstract

Nanocrystalline Cu2ZnSnS4 (CZTS) powder was synthesized by a hydrothermal process, using thiourea as sulfur precursor. The powder was qualitatively analyzed using X-ray to identify the phase, and the size of the particles was determined using transmission electron microscopy (TEM). Raman peak at 337.5 cm−1 confirms the formation of pure CZTS particles. The powder was also synthesized solvothermally using ethylenediamine as solvent. The hydrothermally synthesized powder indicated the presence of the kesterite phase Cu2ZnSnS4 and particle size of about 4-5 nm. This environmentally green synthesis by hydrothermal route can produce gram scale synthesis of material with a chemical yield in excess of ~ 90%. UV Vis absorption spectra measurements indicated the band gap of as-synthesized CZTS nanoparticles to be 1.7 eV, which is near the optimum value for photovoltaic solar cell, showing its possible use in photovoltaics.
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水热法绿色合成纳米晶Cu2ZnSnS4粉末
以硫脲为前驱体,采用水热法制备了纳米Cu2ZnSnS4 (CZTS)粉体。用x射线对粉末进行定性分析,鉴定相,用透射电子显微镜(TEM)测定颗粒大小。在337.5 cm−1处的拉曼峰证实了纯CZTS粒子的形成。并以乙二胺为溶剂热合成了该粉体。水热合成的粉末中存在kesterite相Cu2ZnSnS4,粒径约为4 ~ 5 nm。采用水热法进行绿色环保合成,可生产出克级合成材料,化学收率可达90%以上。紫外可见吸收光谱测量表明,合成的CZTS纳米粒子带隙为1.7 eV,接近光伏太阳能电池的最佳带隙,显示了其在光伏领域的应用前景。
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