Handa Taketo, Yamada Takumi, Kanemitsu Yoshihiko
Institute for Chemical Research, Kyoto University, Uji, Kyoto 611-0011, Japan.
J Chem Phys. 2022 Aug 28;157(8):084201. doi: 10.1063/5.0101926.
We describe the relation of the carrier lifetime of a light-absorber material determined with pulse-excitation time-resolved techniques to the steady-state carrier density and lifetime in a solar cell under continuous-wave excitation. Our approach constitutes a simple experimental examination of the excitation-fluence-dependent carrier lifetime of absorber materials. It provides the steady-state carrier density and lifetime under 1-sun solar illumination for metal halide perovskite solar cells. The determination of the steady-state carrier responses allows the clarification of optical and photovoltaic properties under 1-sun illumination and thus the identification of loss mechanisms in device performance. Model calculations are also provided to show how the carrier lifetime governs the luminescence quantum yields and open-circuit voltages. The calculations quantify a scaling law between a monomolecular recombination lifetime and an open-circuit voltage as a result of a combination of two density-dependent effects.
我们描述了用脉冲激发时间分辨技术测定的光吸收材料的载流子寿命与连续波激发下太阳能电池中的稳态载流子密度和寿命之间的关系。我们的方法构成了对吸收体材料激发fluence依赖型载流子寿命的简单实验研究。它提供了金属卤化物钙钛矿太阳能电池在1太阳光照下的稳态载流子密度和寿命。稳态载流子响应的测定有助于阐明1太阳光照下的光学和光伏特性,从而识别器件性能中的损耗机制。还提供了模型计算,以展示载流子寿命如何控制发光量子产率和开路电压。这些计算量化了由于两种密度依赖效应的组合而导致的单分子复合寿命与开路电压之间的标度律。