Synthesis and characterization of CuO/Co0304 and CuO/Fe:O; composites and their potential application in the photocatalytic CO2 reduction process

Quimica Hoy Pub Date : 2023-11-20 DOI:10.29105/qh12.03-333
Jorge Abraham Quilantán Serrano, Luis Felipe Garay Rodríguez, Lorena Leticia Garza Tovar, L. M. Torres Martínez, Isaías Juarez Ramirez
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Abstract

Cupric oxide is a prominent material used as a photocatalyst due to its narrow bandgap; coupling it with other metal oxide semiconductors improves its efficiency due to the favored charge transference. This work reports the synthesis of the composites CuO/CosO4 and CuO/Fex0s, prepared in a sol-gel and hydrothermal two-step methodology to disperse the cocatalyst particles over CuO. The effect of the cocatalyst's concentration over CuO in its structural, optical, and photocatalytic properties was analyzed. A better distribution of the Fe203 particles over CuO was observed, which resulted in the largest cfficiency in the photocatalytic CO2 reduction to formic acid. Despite this, increasing the cocatalyst concentration reduces the photocatalytic activity due to the surface saturation, probably causing the formation of recombination centers. The presented methodology represents a low-cost way to obtain highly efficient composites in photocatalytic reductive processes.
CuO/Co0304 和 CuO/Fe:O 复合材料的合成与表征及其在光催化二氧化碳还原过程中的潜在应用
氧化铜因其窄带隙而成为一种重要的光催化剂材料;将其与其他金属氧化物半导体耦合可提高电荷转移效率。本研究报告介绍了 CuO/CosO4 和 CuO/Fex0s 复合材料的合成方法,该方法采用溶胶-凝胶和水热两步法制备,将助催化剂颗粒分散在 CuO 上。研究分析了CuO上的茧催化剂浓度对其结构、光学和光催化性能的影响。结果表明,Fe203 颗粒在 CuO 上的分布更均匀,因此光催化 CO2 还原成甲酸的效率最高。尽管如此,由于表面饱和,增加共催化剂浓度会降低光催化活性,这可能是由于形成了重组中心。所介绍的方法是在光催化还原过程中获得高效复合材料的低成本途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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