Institute for Chemistry and Technology of Materials (ICTM), NAWI Graz , Graz University of Technology , Stremayrgasse 9 , 8010 Graz , Austria.
Institute of Inorganic Chemistry, NAWI Graz , Graz University of Technology , Stremayrgasse 9 , 8010 Graz , Austria.
Inorg Chem. 2018 Sep 4;57(17):10576-10586. doi: 10.1021/acs.inorgchem.8b01161. Epub 2018 Aug 21.
In this contribution, we present the synthesis and characterization of the mixed-anion halogenobismuthate(III) (CHNH)BiICl (MBIC) as an alternative lead-free perovskite-type semiconductor, and discuss its optical, electronic, and photovoltaic properties in comparison to the methylammonium bismuth iodide (CHNH)BiI (MBI) compound. The exchange of iodide with chloride during synthesis leads to the formation of an orthorhombic ABX-type crystal structure ( Cmma, No. 67) with isolated BiX octahedra and methylammonium chloride interlayers. The experimentally found optical indirect band gap of 2.25 eV is in good agreement with the calculated value of 2.50 eV derived from DFT simulations. The valence band maximum and the conduction band minimum were determined to be at -6.2 eV and -4.0 eV vs vacuum. Similar to MBI, thin films of MBIC are composed of microcrystalline platelets. Time-resolved photoluminescence measurements show electron transfer of MBIC to mesoporous TiO. The photovoltaic behavior of both compounds is compared in solar cells with the following device architecture: glass/ITO/compact TiO/mesoporous TiO/MBIC or MBI/spiro-OMeTAD/Au. Despite the zero-dimensional structure of MBIC, a maximum power conversion efficiency of 0.18% and a high fill factor of almost 60% were obtained with this material as absorber layer. When stored under inert conditions, these solar cells show an excellent long-term stability over the investigated period of more than 700 days.
在本研究中,我们介绍了混合阴离子卤化铋(III)(CHNH)BiICl(MBIC)的合成和表征,它是一种替代无铅钙钛矿型半导体,并讨论了其与碘化甲基铵铋(CHNH)BiI(MBI)化合物相比的光学、电子和光伏性能。在合成过程中用氯离子取代碘离子,导致形成了具有孤立的 BiX 八面体和甲基氯化铵夹层的正交 ABX 型晶体结构(Cmma,No.67)。实验发现的 2.25eV 的光学间接带隙与 DFT 模拟得出的 2.50eV 的计算值吻合较好。价带顶和导带底分别确定为 -6.2eV 和 -4.0eV 相对于真空。与 MBI 类似,MBIC 的薄膜由微晶板组成。瞬态光致发光测量表明,MBIC 向介孔 TiO 的电子转移。将这两种化合物的光伏性能在以下器件结构的太阳能电池中进行了比较:玻璃/ITO/致密 TiO/介孔 TiO/MBIC 或 MBI/spiro-OMeTAD/Au。尽管 MBIC 的零维结构,当作为吸收层时,仍获得了 0.18%的最大功率转换效率和近 60%的高填充因子。当在惰性条件下储存时,这些太阳能电池在超过 700 天的研究期间表现出优异的长期稳定性。