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Bandgap Engineering Enhances the Performance of Mixed-Cation Perovskite Materials for Indoor Photovoltaic Applications

机译:带隙工程技术增强了用于室内光伏应用的混合阳离子钙钛矿材料的性能

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Indoor photovoltaics (IPVs) are attracting renewed interest because they can provide sustainable energy through the recycling of photon energy from household lighting facilities. Herein, the Shockley-Queisser model is used to calculate the upper limits of the power conversion efficiencies (PCEs) of perovskite solar cells (PeSCs) for two types of artificial light sources: fluorescent tubes (FTs) and white light-emitting diodes (WLEDs). An unusual zone is found in which the dependence of the PCEs on the bandgap (E-g) under illumination from the indoor lighting sources follows trends different from that under solar irradiation. In other words, IPVs exhibiting high performance under solar irradiation may not perform well under indoor lighting conditions. Furthermore, the ideal bandgap energy for harvesting photonic power from these indoor lighting sources is approximate to 1.9 eV-a value higher than that of common perovskite materials (e.g., for CH3NH3PbI3). Accordingly, Br- ions are added into the perovskite films to increase their values of E-g. A resulting PeSC featuring a wider bandgap exhibits PCEs of 25.94% and 25.12% under illumination from an FT and a WLED, respectively. Additionally, large-area (4 cm(2)) devices are prepared for which the PCE reaches approximate to 18% under indoor lighting conditions.
机译:室内光伏(IPV)引起了新的兴趣,因为它们可以通过回收家用照明设施中的光子能量来提供可持续的能源。此处,使用Shockley-Queisser模型来计算两种人造光源:荧光灯管(FTs)和白光发光二极管(WLED)的钙钛矿太阳能电池(PeSCs)的功率转换效率(PCE)的上限)。发现一个不寻常的区域,在该区域中,在室内光源照射下,PCE对带隙(E-g)的依赖性遵循与日光照射下的趋势不同的趋势。换句话说,在太阳辐射下表现出高性能的IPV在室内照明条件下可能表现不佳。此外,用于从这些室内光源收集光子能量的理想带隙能量约为1.9 eV,该值比普通钙钛矿材料(例如,CH3NH3PbI3)高。因此,将溴化物添加到钙钛矿膜中以增加其E-g值。所得到的具有较宽带隙的PeSC在FT和WLED照射下的PCE分别为25.94%和25.12%。此外,还准备了大面积(4 cm(2))设备,在室内照明条件下PCE达到大约18%。

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