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首页> 外文期刊>Solar Energy >Theoretical DFT studies of Cu_2HgSnS_4 absorber material and Al:ZnO/ZnO/CdS/Cu_2HgSnS_4/Back contact heterojunction solar cell
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Theoretical DFT studies of Cu_2HgSnS_4 absorber material and Al:ZnO/ZnO/CdS/Cu_2HgSnS_4/Back contact heterojunction solar cell

机译:Cu_2HGSNS_4吸收剂材料的理论DFT研究和Al:ZnO / ZnO / Cds / Cu_2HGSNS_4 /后接触异质结太阳能电池

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摘要

We investigated a single heterojunction solar cell with stannite phase Cu2HgSnS4 as a new potential absorber material using the hybrid density functional theory for materials parameter and macroscopic device simulation studies for the photovoltaic response. The lattice constants are optimized using PBEsol and GGA exchange-correlation approach with mBJ parameterization and considering spin-orbit coupling effect on heavy element Hg, while strong correlation of Cu and Hg 3d electrons are taken into account by Hubbard parameter U = 0.52 Ry. The computed bandgap is -1.33 eV. The effective mass of electrons and holes in the respective band edges (electron in conduction band and the hole in the valence band) is 0.25 m0 and 0.91 m0, respectively. Further, the computed materials optoelectronic parameters are used to optimize the device performance by introducing a variation in minority carrier lifetime, defect concentration in Cu2HgSnS4 absorber, Cu2HgSnS4/CdS interface, and the absorber thickness to achieve a realistic photovoltaic response. The optimal conversion efficiency is 11.6% after taking more realistic parameters in the considered single-junction solar cell. However, the maximum photovoltaic response 17% can be achieved by controlling absorber and interface defects together with optimal carrier concentration.
机译:我们研究了使用杂交密度函数理论的新电位吸收材料的单个异质结太阳能电池,其用于材料参数和光伏反应的宏观设备模拟研究。使用PBESOL和GGA交换相关方法优化了晶格常数,并考虑了对重元素HG的旋转轨道耦合效果,而通过Hubbard参数U = 0.52 RY考虑Cu和Hg 3D电子的强相关。计算的带隙为-1.33eV。各个带边缘的有效质量和孔(在导通带中的电子中和价带中的孔)分别为0.25m0和0.91m0。此外,计算的材料光电参数用于通过引入少数载体寿命的变化,CU2HGSNS4吸收器,CU2HGSNS4 / CDS接口和吸收器厚度的缺陷浓度来优化器件性能,以实现逼真的光伏响应。在考虑的单结太阳能电池中取得更多现实参数后,最佳转换效率为11.6%。然而,最大光伏响应& 17%可以通过控制吸收器和界面缺陷以及最佳的载流子浓度来实现。

著录项

  • 来源
    《Solar Energy》 |2021年第9期|802-813|共12页
  • 作者单位

    Indian Inst Technol Dept Phys Jodhpur 342037 Rajasthan India;

    Indian Inst Technol Dept Phys Jodhpur 342037 Rajasthan India;

    Indian Inst Technol Dept Phys Jodhpur 342037 Rajasthan India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    CHTS; Absorber; Solar cell; Efficiency; Defects;

    机译:CHTS;吸收剂;太阳能电池;效率;缺陷;

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