首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Amplification in Light Energy Conversion at Q-CdTe Sensitized TiO2 Photonic Crystal, Photoelectrochemical Stability in Se2- Electrolyte, and Size-Dependent Type II Q-CdTe/CdSe Formation
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Amplification in Light Energy Conversion at Q-CdTe Sensitized TiO2 Photonic Crystal, Photoelectrochemical Stability in Se2- Electrolyte, and Size-Dependent Type II Q-CdTe/CdSe Formation

机译:Q-CdTe敏化的TiO2光子晶体的光能转换放大,Se2-电解质中的光电化学稳定性以及与尺寸有关的II型Q-CdTe / CdSe形成

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This study investigates the ability of Se2- redox electrolyte to separate the photoholes and stabilize Q-CdTe quantum dot solar cell with a liquid junction. We examined the photophysical and photoelectrochemical behaviors of Q-CdTe in two sizes, green-emitting dots of 2.3-2.7 nm diameter and red-emitting dots of 4 nm diameter, in the presence of alkaline Se2- electrolyte prepared under inert atmosphere. Photoelectrochemical, absorbance, emission and emission quenching measurements revealed the presence of size dependence in Se2- surface binding to Q-CdTe, growth of type II Q-CdTe/CdSe, and stability in the photoelectrochemical cell. Emission quenching measurements show that Se2- scavenges the Q-CdTe photohole, with mechanisms that depended on size and quencher concentration. Binding of Se2- to green-emitting Q-CdTe occurred with a greater binding constant compared to the red-emitting dots, resulting in formation of type II Q-CdTe/CdSe at the smaller core indicated in red-shifted absorbance and emission spectra with incremental Se2- addition at room temperature. Photoelectrochemical measurements acquired at Q-CdTe sensitized nc-TiO2 and TiO2 inverse opal with a stop band at 600 nm, 600-i-TiO2-o, in Se2- electrolyte confirmed this redox species ability to scavenge the photohole and to protect Q-CdTe against fast photoanodic dissolution, with greater stability observed for the larger dots. Gains in the photon-to-current conversion efficiency attributed to light trapping were measured at Q-CdTe sensitized 600-i-TiO2-o relative to nc-TiO2.
机译:这项研究调查了Se2-氧化还原电解质分离光孔和稳定具有液结的Q-CdTe量子点太阳能电池的能力。我们在惰性气氛下制备的碱性Se2-电解质存在下,检查了两种尺寸的Q-CdTe的光物理和光电化学行为,即直径为2.3-2.7 nm的绿色发光点和直径为4 nm的红色发光点。光电化学,吸光度,发射和发射猝灭测量显示,Se2-表面结合Q-CdTe时存在尺寸依赖性,II型Q-CdTe / CdSe的生长以及在光电化学电池中的稳定性。发射猝灭测量结果表明,Se2清除了Q-CdTe光孔,其机理取决于大小和猝灭剂浓度。与发红光点相比,Se2-与发绿光的Q-CdTe的结合具有更大的结合常数,导致在较小的核上形成II型Q-CdTe / CdSe,如红移吸收光谱和发射光谱所示。在室温下增加Se2-的添加。 Q-CdTe敏化的nc-TiO2和TiO2反蛋白石在Se2-电解质中的阻带在600 nm,600-i-TiO2-o处获得的光电化学测量结果证实了这种氧化还原物质有能力清除光孔并保护Q-CdTe防止快速的光阳极溶解,对于较大的点观察到更大的稳定性。在Q-CdTe敏化的600-i-TiO2-o相对于nc-TiO2处测量了归因于光捕获的光子-电流转换效率的增益。

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