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Compatibility of PTB7 and 70PCBM as a Key Factor for the Stability of PTB7:70PCBM Solar Cells, , , and . Advanced Energy Materials, 6 (13): n/a--n/a (2016)Recombination in Perovskite Solar Cells: Significance of Grain Boundaries, Interface Traps, and Defect Ions, , , , , , and . ACS Energy Letters, 2 (5): 1214-1222 (2017)Correction to “Charge Recombination Suppressed by Destructive Quantum Interference in Heterojunction Materials”, , , , and . The Journal of Physical Chemistry Letters, 0 (0): 3659-3659 (0)PMID: 27598409.Recombination in Perovskite Solar Cells: Significance of Grain Boundaries, Interface Traps, and Defect Ions, , , , , , and . ACS Energy Letters, 0 (0): 1214-1222 (0)The Effect of the Microstructure on Trap-Assisted Recombination and Light Soaking Phenomenon in Hybrid Perovskite Solar Cells, , , , , , , , and . Advanced Functional Materials, 26 (44): 8094--8102 (2016)Highly Reproducible Sn-Based Hybrid Perovskite Solar Cells with 9% Efficiency, , , , , , , and . Advanced Energy Materials, (2017)Response to Comment on “Charge Carrier Extraction in Organic Solar Cells Governed by Steady-State Mobilities”, , , and . Advanced Energy Materials, (November 2018)Efficient Perovskite Solar Cells over a Broad Temperature Window: The Role of the Charge Carrier Extraction, , , , , , , and . Advanced Energy Materials, (2017)Improving Perovskite Solar Cells: Insights From a Validated Device Model, , , , and . Advanced Energy Materials, (2017)Charge Recombination Suppressed by Destructive Quantum Interference in Heterojunction Materials, , , , and . The Journal of Physical Chemistry Letters, 7 (1): 198-203 (2016)PMID: 26683652.