Hybrid Solar Cells, Faculty of Engineering and Natural Sciences, Tampere University, P.O. Box 541, Tampere, FI-33014, Finland.
Surface Science Group, Photonics Laboratory, Tampere University, P.O. Box 692, Tampere, FI-33014, Finland.
Small. 2022 Sep;18(35):e2203768. doi: 10.1002/smll.202203768. Epub 2022 Jul 9.
Lead-free perovskite-inspired materials (PIMs) are gaining attention in optoelectronics due to their low toxicity and inherent air stability. Their wide bandgaps (≈2 eV) make them ideal for indoor light harvesting. However, the investigation of PIMs for indoor photovoltaics (IPVs) is still in its infancy. Herein, the IPV potential of a quaternary PIM, Cu AgBiI (CABI), is demonstrated upon controlling the film crystallization dynamics via additive engineering. The addition of 1.5 vol% hydroiodic acid (HI) leads to films with improved surface coverage and large crystalline domains. The morphologically-enhanced CABI+HI absorber leads to photovoltaic cells with a power conversion efficiency of 1.3% under 1 sun illumination-the highest efficiency ever reported for CABI cells and of 4.7% under indoor white light-emitting diode lighting-that is, within the same range of commercial IPVs. This work highlights the great potential of CABI for IPVs and paves the way for future performance improvements through effective passivation strategies.
无铅钙钛矿启发材料(PIMs)由于其低毒性和固有的空气稳定性,在光电子学领域引起了关注。它们的宽带隙(≈2 eV)使它们成为室内光收集的理想选择。然而,对于室内光伏(IPV)的 PIM 研究仍处于起步阶段。本文通过添加剂工程控制薄膜结晶动力学,展示了四元 PIM,CuAgBiI(CABI)的 IPV 潜力。添加 1.5 体积%的氢碘酸(HI)可得到表面覆盖率提高和大晶粒畴的薄膜。形貌增强的 CABI+HI 吸收体可在 1 个太阳光照射下获得 1.3%的光电转换效率——这是 CABI 电池的最高效率,在室内白光发光二极管照明下的效率为 4.7%——即在商业 IPV 的相同范围内。这项工作突出了 CABI 在 IPV 中的巨大潜力,并通过有效的钝化策略为未来的性能提升铺平了道路。