首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Effects of composition faults in ternary metal chalcogenides (ZnxIn2S3+x, x=1-5) layered crystals for visible-light-driven catalytic hydrogen generation and carbon dioxide reduction
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Effects of composition faults in ternary metal chalcogenides (ZnxIn2S3+x, x=1-5) layered crystals for visible-light-driven catalytic hydrogen generation and carbon dioxide reduction

机译:三元金属硫属化物(Znxin2S3 + X,X = 1-5)分层晶体中的组成故障对可见光催化氢产生和二氧化碳还原的影响

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Exploring efficient and stable photocatalysts is critical for the practical application of photocatalytic water splitting to get clean hydrogen fuel. In this work, ZnxIn2S3+x (x = 1-5) samples with various composition faults were synthesized through a simple hydrothermal method as a series of highly efficient visible-light-driven photocatalysts. Composition faults in ZnxIn2S3+x samples played important roles in the charge carrier transfer from internal to external surfaces, further affecting the redox reaction of photogenerated electrons and holes at the solid-liquid interface. The absorption edge of ZnxIn2S3+x samples shifted to shorter wavelengths as the atomic ratio of Zn/In in the synthetic solution was increased (i.e., x increased from 1 to 5). The photocatalytic activity of ZnxIn2S3+x was evaluated via photocatalytic hydrogen production from water and CO2 reduction under visible light irradiation. The obtained ZnIn2S4 (x = 1) sample displayed the best photocatalytic activity among the ZnxIn2S3+x photocatalysts, with the hydrogen evolution rate determined to be 2.93 mmol.h(-1)g(-1) and the quantum yield at 420 nm determined to be 7.92%. As for visible light-driven CO2 reduction, the ZnxIn2S3+x sample also exhibited the highest CO formation rate of 40.4 mu mol h(-1)g(-1). Results suggest that the existence of composition faults provided extra energy barriers to block photoinduced charge carrier transfer. Furthermore, the cyclic tests indicate the stability of the ZnIn2S4 product over five cycles of repeated use. This study provides new insights into unveiling the relationship of structure-property of ZnxIn2S3+x layered crystals, which are valuable for implementation in a wide range of environmental energy applications.
机译:探索高效且稳定的光催化剂对于光催化水分裂的实际应用至关重要,以获得清洁的氢燃料。在这项工作中,通过简单的水热法合成具有各种组成故障的Znxin2S3 + X(X = 1-5)样品作为一系列高效的可见光驱动光催化剂。 Znxin2S3 + X样品中的组成故障在从内部到外表面的电荷载体转移中起重要作用,进一步影响了在固液界面处的光生电子和孔的氧化还原反应。随着合成溶液中的Zn / In的原子比(即,x从1至5增加,Znxin2S3 + X样品的吸收边缘被移位为较短波长。通过在可见光照射下通过光催化氢气产生通过光催化氢产生来评价Znxin2S3 + X的光催化活性。所获得的Znin2S4(X = 1)样品在Znxin2S3 + X光催化剂中显示出最佳的光催化活性,测定为2.93mmol.h(-1)g(-1),并且测定420nm的量子产率为7.92%。对于可见光驱动的二氧化碳还原,Znxin2S3 + X样品还表现出40.4μmolH(-1)G(-1)的最高CO形成速率。结果表明,组成故障的存在提供了额外的能量屏障来阻止光抑制电荷载体转移。此外,循环试验表明Znin2S4产品的稳定性在重复使用的五个循环中。本研究提供了揭示Znxin2S3 + X分层晶体结构性质的新见解,这对于各种环境能源应用中的实现是有价值的。

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