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首页> 外文期刊>Energy & environmental science >Extracting large photovoltages from a-SiC photocathodes with an amorphous TiO2 front surface field layer for solar hydrogen evolution
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Extracting large photovoltages from a-SiC photocathodes with an amorphous TiO2 front surface field layer for solar hydrogen evolution

机译:从具有非晶TiO2前表面场层的a-SiC光电阴极中提取大的光电压以用于太阳析氢

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摘要

A thin film heterojunction photocathode is fabricated by depositing an n-type amorphous titanium dioxide (TiO2) onto a p-type/intrinsic hydrogenated amorphous silicon carbide (a-SiC). Using this configuration, the photovoltage of the photocathode increases from 0.5 V to 0.8 V under open circuit conditions, indicating the change in band-edge energetics from the semiconductor-liquid junction to the isolated solid p-i-n junction. The p-i-n structure produces an internal electric field that increases the operating photovoltage, and subsequently improves the drift mechanism of photogenerated charge carriers across the intrinsic layer. The enhancement of the photovoltage leads to a very positive photocurrent onset potential of +0.8 V vs. RHE and exhibits a photocurrent density of 8.3 mA cm(-2) at 0 V vs. RHE with only a 100 nm absorber layer. The a-SiC photocathode with a front surface field amorphous TiO2 layer shows a high stability for 12 hours of operation under photocatalytic conditions. This high performance, very thin, and earth-abundant photocathode is very promising for integration with smaller band gap solar absorbers to form a multijunction system for highly efficient bias-free solar water splitting devices.
机译:通过将n型非晶二氧化钛(TiO2)沉积到p型/本征氢化非晶碳化硅(a-SiC)上来制造薄膜异质结光电阴极。使用这种配置,在开路条件下,光电阴极的光电压从0.5 V增加到0.8 V,表明从半导体-液体结到隔离的固态p-i-n结的带边高能变化。 p-i-n结构产生一个内部电场,该电场会增加工作光电压,并随后改善光生电荷载流子在本征层上的漂移机制。光电压的增强导致相对于RHE的+0.8 V非常正的光电流起始电势,并且在0 V对RHE的情况下,仅具有100 nm吸收层,光电流密度为8.3 mA cm(-2)。具有前场非晶TiO2层的a-SiC光电阴极在光催化条件下运行12小时显示出很高的稳定性。这种高性能,非常薄且富含地球的光电阴极非常适合与较小的带隙太阳能吸收器集成,以形成用于高效无偏压太阳能分水装置的多结系统。

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  • 来源
    《Energy & environmental science》 |2015年第5期|1585-1593|共9页
  • 作者单位

    Delft Univ Technol, Dept Chem Engn, MECS, NL-2600 GA Delft, Netherlands;

    Delft Univ Technol, Dept Elect Sustainable Energy, Photovolta Mat & Devices PVMD, NL-2600 GA Delft, Netherlands;

    Delft Univ Technol, Dept Elect Sustainable Energy, Photovolta Mat & Devices PVMD, NL-2600 GA Delft, Netherlands;

    Delft Univ Technol, Dept Elect Sustainable Energy, Photovolta Mat & Devices PVMD, NL-2600 GA Delft, Netherlands;

    Delft Univ Technol, Dept Chem Engn, MECS, NL-2600 GA Delft, Netherlands;

    Delft Univ Technol, Dept Elect Sustainable Energy, Photovolta Mat & Devices PVMD, NL-2600 GA Delft, Netherlands;

    Delft Univ Technol, Dept Chem Engn, MECS, NL-2600 GA Delft, Netherlands;

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