Publication | Open Access
Open-circuit and short-circuit loss management in wide-gap perovskite p-i-n solar cells
139
Citations
45
References
2023
Year
In this work, we couple theoretical and experimental approaches to understand and reduce the losses of wide bandgap Br-rich perovskite pin devices at open-circuit voltage (V<sub>OC</sub>) and short-circuit current (J<sub>SC</sub>) conditions. A mismatch between the internal quasi-Fermi level splitting (QFLS) and the external V<sub>OC</sub> is detrimental for these devices. We demonstrate that modifying the perovskite top-surface with guanidinium-Br and imidazolium-Br forms a low-dimensional perovskite phase at the n-interface, suppressing the QFLS-V<sub>OC</sub> mismatch, and boosting the V<sub>OC</sub>. Concurrently, the use of an ionic interlayer or a self-assembled monolayer at the p-interface reduces the inferred field screening induced by mobile ions at J<sub>SC</sub>, promoting charge extraction and raising the J<sub>SC</sub>. The combination of the n- and p-type optimizations allows us to approach the thermodynamic potential of the perovskite absorber layer, resulting in 1 cm<sup>2</sup> devices with performance parameters of V<sub>OC</sub>s up to 1.29 V, fill factors above 80% and J<sub>SC</sub>s up to 17 mA/cm<sup>2</sup>, in addition to a thermal stability T<sub>80</sub> lifetime of more than 3500 h at 85 °C.
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