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Effect of Magnesium Incorporation on Solution-Processed Kesterite Solar Cells

机译:镁掺入对固溶处理的钾长石太阳能电池的影响

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摘要

The introduction of the alkaline-earth element Magnesium (Mg) into Cu2ZnSn(S,Se)4 (CTZSSe) is explored in view of potential photovoltaic applications. Cu2Zn1−xMgxSn(S,Se)4 absorber layers with variable Mg content x = 0…1 are deposited using the solution approach with dimethyl sulfoxide solvent followed by annealing in selenium atmosphere. For heavy Mg alloying with x = 0.55…1 the phase separation into Cu2SnSe3, MgSe2, MgSe and SnSe2 occurs in agreement with literature predictions. A lower Mg content of x = 0.04 results in the kesterite phase as confirmed by XRD and Raman spectroscopy. A photoluminescence maximum is red-shifted by 0.02 eV as compared to the band-gap and a carrier concentration NCV of 1 × 1016 cm−3 is measured for a Mg-containing kesterite solar cell device. Raman spectroscopy indicates that structural defects can be reduced in Mg-containing absorbers as compared to the Mg-free reference samples, however the best device efficiency of 7.2% for a Mg-containing cell measured in this study is lower than those frequently reported for the conventional Na doping.
机译:鉴于潜在的光伏应用,探索了将碱土元素镁(Mg)引入Cu2ZnSn(S,Se)4(CTZSSe)。 Mg含量x = 0…1的具有可变Mg含量的Cu2Zn1-xMgxSn(S,Se)4吸收层通过溶液法与二甲基亚砜溶剂沉积,然后在硒气氛中退火。对于x = 0.55…1的重金属镁合金,与文献预测相一致,会发生相分离成Cu2SnSe3,MgSe2,MgSe和SnSe2。 X射线衍射和拉曼光谱法证实,较低的Mg含量x = 0.04会导致硅藻土相。与带隙相比,光致发光最大值发生了0.02 eV的红移,并且对于Mg-,测得的载流子浓度NCV为1×10 16 cm -3 含有硅藻土的太阳能电池装置。拉曼光谱表明,与不含镁的参比样品相比,含镁吸收剂的结构缺陷可以减少,但是本研究中测得的含镁电池的最佳器件效率为7.2%,低于经常报道的常规钠掺杂。

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