Hidalgo Juanita, Breternitz Joachim, Többens Daniel M, LaFollette Diana K, Pedorella Charles N B, Sher Meng-Ju, Schorr Susan, Correa-Baena Juan-Pablo
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
Department Structure and Dynamics of Energy Materials, Helmholtz-Zentrum Berlin Für Materialien und Energie, Hahn-Meitner-Platz 1, Berlin 14109, Germany.
Chem Mater. 2024 Oct 4;36(20):10167-10175. doi: 10.1021/acs.chemmater.4c01670. eCollection 2024 Oct 22.
Mixed-cation mixed-halide lead perovskites have been shown to be excellent candidates for solar energy conversion. However, understanding the structural phases of these mixed-ion perovskites across a wide range of operating temperatures, including very low temperatures for space applications, is crucial. In this study, we investigated the structure of formamidinium-based Cs FA Pb(Br I ) using low-temperature in situ synchrotron powder X-ray diffraction. Our findings revealed that substituting the I anion with Br in mixed-cation (Cs,FA) perovskites suppressed the phase transformation from tetragonal to orthorhombic at low temperatures. The addition of Br also prevented the formation of nonperovskite secondary phases. We gained fundamental insights into the structural behavior of these materials by creating a low-temperature phase diagram for the compositional set of mixed-cation mixed-halides. This understanding of the structural properties lays the groundwork for designing more robust and efficient energy materials capable of functioning under extreme temperature conditions, including space-based solar energy conversion.
混合阳离子混合卤化物铅基钙钛矿已被证明是太阳能转换的优秀候选材料。然而,了解这些混合离子钙钛矿在广泛的工作温度范围内的结构相,包括空间应用所需的极低温度,至关重要。在本研究中,我们使用低温原位同步辐射粉末X射线衍射研究了基于甲脒的CsFA Pb(BrI)的结构。我们的研究结果表明,在混合阳离子(Cs,FA)钙钛矿中用Br取代I阴离子可抑制低温下从四方相到正交相的相变。Br的添加还阻止了非钙钛矿次生相的形成。通过为混合阳离子混合卤化物的成分集创建低温相图,我们对这些材料的结构行为有了基本认识。对结构特性的这种理解为设计能够在极端温度条件下运行的更坚固、高效的能量材料奠定了基础,包括天基太阳能转换。