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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Construction of 2D/2D Bi2Se3/g-C3N4 nanocomposite with High interfacial charge separation and photo-heat conversion efficiency for selective photocatalytic CO2 reduction
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Construction of 2D/2D Bi2Se3/g-C3N4 nanocomposite with High interfacial charge separation and photo-heat conversion efficiency for selective photocatalytic CO2 reduction

机译:具有高界面电荷分离的2D / 2D Bi2Se3 / G-C3N4纳米复合材料,具有光催化二氧化碳减少的高界面电荷分离和光热转化效率

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摘要

Solar-energy-driven CO2 conversion into high-valued fuels has been considered as a promising strategy to alleviate the greenhouse effect and energy crisis problems. However, the rapid charge recombination, poor light utilization and low selectivity, etc. still limit the efficiency of photocatalytic CO2 reduction. In this work, a novel 2D/2D Bi2Se3/g-C3N4 heterojunction composite has been developed to investigate the improved photocatalytic activity towards CO2 reduction selectively. Fortunately, an intimate interaction was formed between 2D Bi2Se3 and 2D g-C3N4, which is very beneficial for the charge separation and transfer. In this composite, Bi2Se3 not only acted as a cocatalyst liked role, but also played as an extra heater for photocatalytic reaction by effective phototo-heat conversion. As expected, the 2D/2D Bi2Se3/g-C3N4 composite presented much improved photocatalytic ability for CO2 reduction to CO, which is about 6.3 times higher than that of pristine g-C3N4 under the irradiation of full spectrum. Notably, the product from CO2 reduction was nearly 100% CO without other carbon products, and the selectivity for CO was greater than 90% over H-2 evolution. The experimental tests and DFT calculations confirmed that the superiority of photocatalytic CO2 reduction ability of Bi2Se3/g-C3N4 composite over other counterparts should be attributed to the synergetic effect of highly improved charge separation and strong photo-to-heat conversion efficiency. Meanwhile, the CO2 reduction process was studied by in-situ FTIR in detail. The as-proposed composite in this work might provide a potential strategy for developing high efficiency of photocatalytic CO2 reduction to valuable fuels.
机译:太阳能驱动的二氧化碳转化为高价值燃料被认为是缓解温室效应和能源危机问题的有希望的策略。然而,快速充电重组,光线利用率差和低选择性等仍然限制了光催化二氧化碳还原的效率。在这项工作中,已经开发了一种新颖的2D / 2D Bi2Se3 / G-C3N4异质结复合物,以研究选择性地改善的光催化活性对二氧化碳还原。幸运的是,在2D Bi2Se3和2D G-C3N4之间形成了亲密相互作用,这对于电荷分离和转移非常有益。在这种复合材料中,Bi2Se3不仅担任助催化剂喜欢的作用,而且还通过有效的光电热转化作为光催化反应的额外加热器。如所预期的,2D / 2D BI2SE3 / G-C3N4复合材料呈现了大量改善的光催化能力,用于CO 2对CO的CO 2,其在全光谱照射下的丙氨酸G-C3N4高约6.3倍。值得注意的是,来自CO2还原的产物近100%CO,没有其他碳产物,并且CO的选择性大于H-2进化的90%。实验试验和DFT计算证实,在其他对应物上的Bi2Se3 / G-C3N4复合材料的光催化CO2降低能力的优越性应归因于高度改善电荷分离和强烈的光对热转换效率的协同作用。同时,通过原位FTIR详细研究了CO2还原过程。本作作品中的拟议综合可以提供促进高效光催化二氧化碳减少效率的潜在策略。

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