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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >The improved efficiency of quantum-dot-sensitized solar cells with a wide spectrum and pure inorganic donor-acceptor type polyoxometalate as a collaborative cosensitizer
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The improved efficiency of quantum-dot-sensitized solar cells with a wide spectrum and pure inorganic donor-acceptor type polyoxometalate as a collaborative cosensitizer

机译:广谱量子点敏化太阳能电池和纯无机供体-受体型多金属氧酸盐作为协同增敏剂的效率提高

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摘要

Quantum dot sensitized solar cells with high theoretical conversion efficiency, low production cost and a simple production process have received great attention in recent years. For CdSe-sensitized cells, the most significant defect of CdSe is that it has the weak absorption between 550 and 600 nm and no absorption after 650 nm, so it is crucial to find a wide spectrum photosensitizer to make up for the defect. Here, wide spectrum and pure inorganic Donor-Acceptor (D-A) Type Polyoxometalate (POM) K6H4[alpha-SiW9O37Co3(H2O)(3)]center dot 17H(2)O (denoted as T) is firstly introduced into QDSCs as a collaborative cosensitizer with CdSe. The T has a visible characteristic peak centering between 550 and 600 nm, and also has stronger absorption after 650 nm, which could make up for the defect of CdSe to constitute a wide spectrum of absorption. The fluorescence spectrum, surface photovoltage spectrum, ultraviolet photoelectron spectroscopy spectrum and solid diffuse spectrum were used to explore the photosensitivity of T. In addition, the D-A type POM can act as a good intermediate for the injection of electrons and improve the visible photocurrent response; meanwhile, it can obviously reduce the dark current and increase the electron lifetime, which can solve the problem about the high recombination at the QD/TiO2/electrolyte interface. In general, the best photovoltaic performance of T and CdSe cosensitized solar cells is increased to 6.59% (J(sc) = 18.37 mA cm(-2), V-oc = 0.57 V, FF = 0.63), which is improved by 32.33% compared to those of the pure CdSe-sensitized cells (J(sc) = 16.20 mA cm(-2), V-oc = 0.50 V, FF = 0.61, eta = 4.98%).
机译:近年来,具有高理论转化效率,低生产成本和简单生产工艺的量子点敏化太阳能电池受到了广泛的关注。对于CdSe敏化的细胞,CdSe的最大缺陷是它在550至600 nm之间的吸收较弱,而在650 nm之后没有吸收,因此找到一种能弥补该缺陷的广谱光敏剂至关重要。在这里,首先将宽谱纯正的无机供体-受体(DA)型多金属氧酸盐(POM)K6H4 [alpha-SiW9O37Co3(H2O)(3)]中心点17H(2)O(表示为T)引入到协作的QDSC中CdSe增敏剂。 T具有在550-600nm之间的可见特征峰,并且在650nm之后具有更强的吸收,这可以弥补CdSe的缺陷,从而构成宽的吸收光谱。用荧光光谱,表面光电压光谱,紫外光电子能谱和固体扩散光谱来研究T的光敏性。此外,D-A型POM可以作为电子注入的良好中间体,并改善可见光电流响应。同时,它可以明显降低暗电流,延长电子寿命,可以解决QD / TiO2 /电解质界面的高复合性问题。通常,T和CdSe共敏太阳能电池的最佳光伏性能提高到6.59%(J(sc)= 18.37 mA cm(-2),V-oc = 0.57 V,FF = 0.63),提高了32.33与纯CdSe敏化电池相比(J(sc)= 16.20 mA cm(-2),V-oc = 0.50 V,FF = 0.61,eta = 4.98%)。

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