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Enhanced Visible Light-Induced Charge Separation and Charge Transport in Cu2O-Based Photocathodes by Urea Treatment

机译:尿素处理增强基于Cu2O的光电阴极中可见光诱导的电荷分离和电荷传输

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Carrier density, photocharge transfer kinetics, and charge transfer resistance of the anodized Cu-Cu2O-CuO photocathode were greatly improved using thermal treatment with urea. Time-correlated single-photon counting 1 (TCSPC) results revealed the faster electron transfer kinetics from Cu2O to CuO in the urea-treated Cu-Cu2O-CuO composite photoelectrodes. Preservation of the metallic copper component via the intermediate Cu3N during the treatment facilitated higher bulk conductance of the Cu-Cu2O-CuO photocathode for improved charge transport. Higher carrier density was also observed in the urea-treated photoelectrode, which was possibly attributed to the presence of nitrogen as a dopant. Furthermore, the compact outer layer of CuO protected the underlayer Cu2O from being in direct contact with the aqueous solution. This suppressed the photocorrosion of Cu2O and resulted in the higher photostability of the Cu-Cu2O-CuO film. When these advantages were combined, the urea-treated Cu-Cu2O-CuO film showed a higher photocurrent of 2.2 mA/cm(2) and improved stability versus that of the conventional Cu-Cu2O-CuO film (1.2 mA/cm(2)). To improve the charge transfer kinetics and carrier density, this paper provides a new strategy for synthesizing effective and stable Cu2O-based photoelectrodes by using urea treatment.
机译:使用尿素热处理可以极大地改善阳极氧化的Cu-Cu2O-CuO光电阴极的载流子密度,光电荷转移动力学和电荷转移阻力。时间相关的单光子计数1(TCSPC)结果表明,在尿素处理的Cu-Cu2O-CuO复合光电极中,Cu2O到CuO的电子转移动力学更快。在处理过程中通过中间的Cu3N保留金属铜成分有助于提高Cu-Cu2O-CuO光电阴极的整体电导率,从而改善电荷传输。在尿素处理的光电极中还观察到较高的载流子密度,这可能归因于氮作为掺杂剂的存在。此外,紧密的CuO外层保护底层Cu2O不与水溶液直接接触。这抑制了Cu 2 O的光腐蚀并且导致了Cu-Cu 2 O-CuO膜的更高的光稳定性。综合这些优势,与常规Cu-Cu2O-CuO膜(1.2 mA / cm(2))相比,尿素处理的Cu-Cu2O-CuO膜显示出更高的2.2 mA / cm(2)的光电流和更高的稳定性。 )。为了提高电荷转移动力学和载流子密度,本文提供了一种通过尿素处理合成有效且稳定的基于Cu2O的光电极的新策略。

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