Co-Evaporated p-i-n Perovskite Solar Cells beyond 20% Efficiency: Impact of Substrate Temperature and Hole-Transport Layer

被引:90
作者
Ross, Marcel [1 ]
Gil-Escrig, Lidon [1 ]
Al-Ashouri, Amran [1 ]
Tockhorn, Philipp [2 ]
Jost, Marko [1 ,3 ]
Rech, Bernd [2 ,4 ]
Albrecht, Steve [1 ,4 ]
机构
[1] Helmholtz Zentrum Berlin, Young Investigator Grp Perovskite Tandem Solar Ce, D-12489 Berlin, Germany
[2] Helmholtz Zentrum Berlin, Inst Silicon Photovolta, D-12489 Berlin, Germany
[3] Univ Ljubljana, Fac Elect Engn, Ljubljana 1000, Slovenia
[4] Tech Univ Berlin, Fac Elect Engn & Comp Sci, D-10587 Berlin, Germany
关键词
perovskite solar cell; co-evaporation; MAPbI(3); p-i-n; substrate temperature; HTL; CARRIER DYNAMICS; THIN-FILM; PERFORMANCE; DEPOSITION; EVAPORATION; MORPHOLOGY; STABILITY;
D O I
10.1021/acsami.0c10898
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
For methylammonium lead iodide perovskite solar cells prepared by co-evaporation, power conversion efficiencies of over 20% have been already demonstrated, however, so far, only in n-i-p configuration. Currently, the overall major challenges are the complex evaporation characteristics of organic precursors that strongly depend on the underlying charge selective contacts and the insufficient reproducibility of the coevaporation process. To ensure a reliable co-evaporation process, it is important to identify the impact of different parameters in order to develop a more detailed understanding. In this work, we study the influence of the substrate temperature, underlying hole-transport layer (polymer PTAA versus self-assembling monolayer molecule MeO-2PACz), and perovskite precursor ratio on the morphology, composition, and performance of co-evaporated p-i-n perovskite solar cells. We first analyze the evaporation of pure precursor materials and show that the adhesion of methylammonium iodide (MAI) is significantly reduced with increased substrate temperature, while it remains almost unaffected for lead iodide (PbI2). This substrate temperature-dependent evaporation behavior of MAI is also transferred to the co-evaporation process and can directly influence the perovskite composition. We demonstrate that the optimal substrate temperature window for perovskite deposition is close to room temperature. At high temperature, not enough MAI for precise stoichiometry is incorporated even with very high MAI rates. While, at temperatures below -25 degrees C, the conversion of MAI with PbI2 is inhibited, and an amorphous yet unreacted film is formed. We observe that perovskite composition and morphology vary widely between the organic hole-transport layers (HTLs) PTAA and MeO-2PACz. For all substrate temperatures, MeO-2PACz enables higher solar cell PCEs than PTAA. Through the combination of vapor-deposited perovskites and a self-assembled monolayer, we achieve a stabilized power conversion efficiency of 20.6%, which is the first reported PCE above 20% for evaporated perovskite solar cells in p-i-n architecture.
引用
收藏
页码:39261 / 39272
页数:12
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