基于n-MAGeI3/p-MAGeI3同质结的高效钙钛矿太阳能电池模拟研究

Simulation research of high efficiency perovskite solar cells based on n-MAGeI3/p-MAGeI3 homojunction

  • 摘要: 在保证光电转换效率和稳定性的前提下,减少或替代铅的使用是钙钛矿太阳能电池(PSCs)绿色发展的重要任务。本文了设计了一种以n-MAGeI3/p-MAGeI3锗基钙钛矿同质结为光吸收层,Cd0.5Zn0.5S和MASnBr3分别为电子传输层(ETL)和空穴传输层(HTL)结构的钙钛矿太阳能电池。采用SCAPS-1D 软件模拟研究了该器件的光电性能,发现n-MAGeI3/p-MAGeI3同质结钙钛矿光吸收层的光生载流子解离性能优于单层MAGeI3钙钛矿的。Cd0.5Zn0.5S 作为ETL比传统TiO2有更加匹配的能级位置, MASnBr3作为HTL不仅可以起到空穴传输作用,还可以补充吸收钙钛矿层未吸收完的光子进而产生电子空穴对,从而提升电池的光电性能。对器件结构与缺陷密度进行优化后,得到 VOC = 1.9069 V, JSC = 15.1388 mA/cm2, FF = 88.69%, PCE=25.60%的光电性能,优于对比器件TiO2/MAGeI3/Spiro-OMeTAD 23.47%的PCE和Cd0.5Zn0.5S/MAGeI3/MASnBr3器件25.33%的PCE

     

    Abstract: It is an important task for the future green development of perovskite solar cells (PSCs) to reducing or replacing the use of lead (Pb) with the premise of ensuring the power conversion efficiency (PCE) and stability. Herein, a PSCs hired a germanium-based n-MAGeI3/p-MAGeI3 perovskite homojunction as light absorbing layer, Cd0.5Zn0.5S as electron transport layer (ETL) and MASnBr3 as hole transport layer (HTL) was designed. SCAPS-1D software was used to simulate the photoelectric performance of the device. It was found that the n-MAGeI3/p-MAGeI3 homojunction structure show a superior photo-carriers dissociation and transportation than the single MAGeI3 absorb layer. The use of Cd0.5Zn0.5S as an ETL has a more matched energy level position than traditional TiO2 ETL. The MASnBr3 HTL can realize the dual functions of hole transportation and supplement absorb the unabsorbed photons of the perovskite layer to generate electron-hole pairs, and thus improving the device performance. After optimization of the device structure and defect density of perovskite layer, we got a high-performance germanium-based PSCs with a VOC of 1.9069 V, JSC of 15.1388 mA/cm2, FF of 88.69% and PCE of 25.60%. While the control device with the TiO2/MAGeI3/Spiro-OMeTAD structure only show a PCE of 23.47% , and the Cd0.5Zn0.5S/MAGeI3/MASnBr3 device show a PCE of 25.33%.

     

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