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首页> 外文期刊>Catalysis science & technology >Construction of an artificial inorganic leaf CdS-BiVO4 Z-scheme and its enhancement activities for pollutant degradation and hydrogen evolution
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Construction of an artificial inorganic leaf CdS-BiVO4 Z-scheme and its enhancement activities for pollutant degradation and hydrogen evolution

机译:建设一个人造无机叶CdS-BiVO4 Z-scheme及其增强活动对污染物降解和氢进化

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The natural photosynthesis of plants is closely related to leaf structures, therefore, the preparation of photocatalysts with leaf-like structures is of great significance to improve the activity of artificial photosynthetic systems. Using the leaves of a Chongyang wood seedling as the biological template (BT), artificial inorganic leaf CdS-BiVO4 was constructed by the "biological template"-"dipping-calcination"-" successive ionic layer adsorption and reaction" (BT-DC-SILAR) method. The fine hierarchical leaf-like structures of the artificial inorganic leaf were confirmed by FE-SEM and TEM observations. In the process of synthesizing the artificial inorganic leaf, the doping of C, N, and Si elements (coming from a natural leaf) was determined by XPS and FTIR analyses. The enhanced optical properties of the artificial inorganic leaf were proved by UV-vis DRS and PL analyses. It was found that the artificial inorganic leaf demonstrated superior photocatalytic activity in both photocatalytic pollutant degradation and H-2 evolution. After 2 h of visible light irradiation, the photocatalytic decomposition efficiency of RhB for the artificial inorganic leaf (92%) is 2.1 times higher than that of no template BiVO4 (45%), and the photocatalytic H-2 evolution for the artificial inorganic leaf (9250 mu mol g(CdS)(-1)h(-1)) is 13 times higher than that of pure CdS (706 mu mol g(CdS)(-1)h(-1)). Driven by solar light, the artificial inorganic leaf also possesses a strong artificial photosynthetic activity. The enhanced photocatalytic performance is ascribed to the combined action of the unique structure, the C, N, and Si elemental doping and the formation of the Z-scheme. Based on this research, a new method, BT-DC-SILAR, for the construction of a micro-nano-Z-scheme photocatalytic system was proposed, which enables the simultaneous control of structure, elemental doping and Z-scheme photocatalytic systems.
机译:天然植物的光合作用密切因此,有关叶结构催化剂的制备与叶状结构改进具有重要意义人工光合作用的活动系统。幼苗作为生物模板(BT),人造无机叶CdS-BiVO4由“生物模板”——“dipping-calcination连续“-”离子层吸附和反应”(BT-DC-SILAR)方法。叶状结构的人造无机叶经FE-SEM和TEM观察。人造无机叶,掺杂的C, N,和硅元素(来自天然植物叶)由XPS和红外光谱分析。光学特性的人造无机叶被紫外可见DRS和PL分析证明。发现人造无机叶证明了优越的光催化活性光催化降解污染物和2进化。辐照,光催化分解人造无机RhB效率叶(92%)的2.1倍模板BiVO4(45%),以及光催化2进化的人造无机叶(9250μ摩尔g h (CdS)(1)(1))是13倍纯粹的cd(706亩摩尔g (CdS) (1) h(1))。由太阳能灯,人造无机叶子也具有强烈的人工光合作用的活动。光催化性能是归因于联合行动的独特结构,C,N,硅元素掺杂的形成Z-scheme。方法、BT-DC-SILAR建设micro-nano-Z-scheme光催化系统提出,使同步控制的结构、元素掺杂和Z-scheme光催化系统。

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