锗
密度泛函理论
卤化物
核磁共振波谱
固态核磁共振
化学
光谱学
结晶学
材料科学
计算化学
核磁共振
物理
硅
无机化学
立体化学
量子力学
有机化学
作者
Riley W. Hooper,Chuyi Ni,Dylan G. Tkachuk,Yingjie He,Victor V. Terskikh,Jonathan G. C. Veinot,Vladimir K. Michaelis
标识
DOI:10.1021/acs.jpclett.1c04033
摘要
Metal halide perovskites remain top candidates for higher-performance photovoltaic devices, but concerns about leading lead-based materials remain. Ge perovskites remain understudied for use in solar cells compared to their Sn-based counterparts. In this work, we undertake a combined 73Ge and 133Cs solid-state Nuclear Magnetic Resonance (NMR) spectroscopy and density functional theory (DFT) study of the bulk CsGeX3 (X = Cl, Br, or I) series. We show how seemingly small structural variations within germanium halide perovskites have major effects on their 73Ge and 133Cs NMR signatures and reveal a near-cubic phase at room temperature for CsGeCl3 with severe local Ge polyhedral distortion. Quantum chemical computations are effective at predicting the structural impact on NMR parameters for 73Ge and 133Cs. This study demonstrates the value of a combined solid-state NMR and DFT approach for investigating promising materials for energy applications, providing information that is out of reach with conventional characterization methods, and adds the challenging 73Ge nucleus to the NMR toolkit.
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