Cho Kyung Taek, Zhang Yi, Orlandi Simonetta, Cavazzini Marco, Zimmermann Iwan, Lesch Andreas, Tabet Nouar, Pozzi Gianluca, Grancini Giulia, Nazeeruddin Mohammad Khaja
Group for Molecular Engineering of Functional Materials , Ecole Polytechnique Fédérale Lausanne Valais Wallis , CH-1951 Sion , Switzerland.
Istituto di Scienze e Tecnologie Molecolari del CNR, ISTM-CNR , via Golgi, 19 , I-20133 Milano , Italy.
Nano Lett. 2018 Sep 12;18(9):5467-5474. doi: 10.1021/acs.nanolett.8b01863. Epub 2018 Aug 28.
Hybrid perovskite solar cells have been capturing an enormous research interest in the energy sector due to their extraordinary performances and ease of fabrication. However, low device lifetime, mainly due to material and device degradation upon water exposure, challenges their near-future commercialization. Here, we synthesized a new fluorous organic cation used as organic spacer to form a low-dimensional perovskite (LDP) with an enhanced water-resistant character. The LDP is integrated with three-dimensional (3D) perovskite absorbers in the form of MAFAPbI (FA = NHCH = NH, MA = CHNH) and CsFAMAPbIBr In both cases, a LDP layer self-assembles as a thin capping layer on the top of the 3D bulk, making the perovskite surface hydrophobic. Our easy and robust approach, validated for different perovskite compositions, limits the interface deterioration in perovskite solar cells yielding to >20% power conversion efficient solar cells with improved stability, especially pronounced in the first hours of functioning under environmental conditions. As a consequence, single and multijunction perovskite devices, such as tandem solar cells, can benefit from the use of the waterproof stabilization here demonstrated, a concept which can be further expanded in the perovskite optoelectronic industry beyond photovoltaics.
混合钙钛矿太阳能电池因其卓越的性能和易于制造的特点,在能源领域引起了极大的研究兴趣。然而,主要由于材料和器件在暴露于水时会降解,导致器件寿命较短,这对其近期商业化构成了挑战。在此,我们合成了一种新型含氟有机阳离子,用作有机间隔体以形成具有增强耐水性的低维钙钛矿(LDP)。该LDP与三维(3D)钙钛矿吸收剂以MAFAPbI(FA = NHCH = NH,MA = CHNH)和CsFAMAPbIBr的形式集成。在这两种情况下,LDP层都会自组装成3D块体顶部的薄覆盖层,使钙钛矿表面具有疏水性。我们简单且稳健的方法,已针对不同的钙钛矿组成进行了验证,可限制钙钛矿太阳能电池中的界面劣化,从而制备出功率转换效率大于20%且稳定性得到改善的太阳能电池,在环境条件下运行的最初几个小时内这种稳定性尤为明显。因此,单结和多结钙钛矿器件,如串联太阳能电池,可受益于此处展示的防水稳定化方法,这一概念在钙钛矿光电子产业中除光伏领域外还可进一步扩展。