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首页> 外文期刊>Journal of Materials Science >Carrier dynamics in hierarchical ZnFe2O4 nanotube arrays and their roles in boosting photoelectrochemical water oxidation
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Carrier dynamics in hierarchical ZnFe2O4 nanotube arrays and their roles in boosting photoelectrochemical water oxidation

机译:分层ZnFe2O4纳米管阵列中的载波动力学及其作用在升压光电化学水氧化中

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摘要

The design of hierarchical tubular nanostructure is a big challenge to improve the photoelectrochemical (PEC) performance. Herein, we designed and synthesized hierarchical ZnFe2O4 (ZFO) nanotube arrays grown on FTO substrates through self-sacrifice template routes. The well-defined ZFO nanotube arrays with a pore diameter of 150 similar to 200 nm provided special configuration for PEC water splitting, such as large specific surface area, direct electron transport pathway, and low surface charge recombination rate. As expected, the optimized ZFO nanotube arrays with non-noble metal molybdenum sulfide as co-catalyst exhibited excellent PEC activity (maximum photocurrent density up to 0.9 mA cm(-2) at 1.23 V vs. RHE) under AM 1.5G simulated sunlight (100 mW cm(-2)). And the photocurrent density of the ZFO/MoSx electrode can maintain ca. 72.0% initial value under 1 h continuous light illumination. Via intensity-modulated photocurrent spectroscopy analysis, the enhanced mechanism of PEC water oxidation was discovered, that is, the improved surface charge separation efficiency aroused by the increased charge transfer efficiency for the optimized ZFO/MoSx electrode. Low charge recombination and fast carrier transfer accelerated the water oxidation kinetics at the electrode/electrolyte interface. This work provides a valuable insight to understand the interfacial charge transfer kinetics for the catalyst decorated photoelectrode toward efficient solar water oxidation.
机译:多层管状纳米结构的设计是提高光电化学性能的一大挑战。在此,我们通过自我牺牲模板法设计并合成了在FTO衬底上生长的ZnFe2O4(ZFO)纳米管阵列。ZFO纳米管阵列的孔径为150,类似于200 nm,为PEC水裂解提供了特殊的结构,例如大的比表面积、直接的电子传输途径和低的表面电荷复合率。正如预期的那样,以非贵金属硫化钼为助催化剂的优化ZFO纳米管阵列在AM 1.5G模拟阳光(100 mW cm(-2))下表现出优异的PEC活性(在1.23 V下的最大光电流密度高达0.9 mA cm(-2)vs.RHE)。在1h连续光照条件下,ZFO/MoSx电极的光电流密度可保持约72.0%的初始值。通过强度调制光电流谱分析,发现了PEC水氧化的增强机理,即优化后的ZFO/MoSx电极的电荷转移效率提高,从而提高了表面电荷分离效率。低电荷复合和快速载流子转移加速了电极/电解质界面的水氧化动力学。这项工作为理解催化剂修饰的光电极向高效太阳能水氧化的界面电荷转移动力学提供了有价值的见解。

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  • 来源
    《Journal of Materials Science 》 |2021年第15期| 共11页
  • 作者单位

    Anhui Univ AnHui Prov Key Lab Chem Inorgan Organ Hybrid Func Key Lab Struct &

    Funct Regulat Hybrid Mat Minist Educ Sch Chem &

    Chem Engn Hefei 230601 Peoples R China;

    Anhui Univ AnHui Prov Key Lab Chem Inorgan Organ Hybrid Func Key Lab Struct &

    Funct Regulat Hybrid Mat Minist Educ Sch Chem &

    Chem Engn Hefei 230601 Peoples R China;

    Anhui Univ AnHui Prov Key Lab Chem Inorgan Organ Hybrid Func Key Lab Struct &

    Funct Regulat Hybrid Mat Minist Educ Sch Chem &

    Chem Engn Hefei 230601 Peoples R China;

    Anhui Univ AnHui Prov Key Lab Chem Inorgan Organ Hybrid Func Key Lab Struct &

    Funct Regulat Hybrid Mat Minist Educ Sch Chem &

    Chem Engn Hefei 230601 Peoples R China;

    Anhui Univ AnHui Prov Key Lab Chem Inorgan Organ Hybrid Func Key Lab Struct &

    Funct Regulat Hybrid Mat Minist Educ Sch Chem &

    Chem Engn Hefei 230601 Peoples R China;

    Anhui Univ AnHui Prov Key Lab Chem Inorgan Organ Hybrid Func Key Lab Struct &

    Funct Regulat Hybrid Mat Minist Educ Sch Chem &

    Chem Engn Hefei 230601 Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学 ;
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