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Suppressed Lattice Disorder for Large Emission Enhancement and Structural Robustness in Hybrid Lead Iodide Perovskite Discovered by High-Pressure Isotope Effect
Authors:Lingping Kong  Jue Gong  Qingyang Hu  Francesco Capitani  Anna Celeste  Takanori Hattori  Asami Sano-Furukawa  Nana Li  Wenge Yang  Gang Liu  Ho-kwang Mao
Affiliation:1. Center for High Pressure Science and Technology Advanced Research, Shanghai, 201203 China;2. Department of Physics, Florida State University, Tallahassee, FL, 32306 USA;3. Synchrotron SOLEIL, L'Orme des Merisiers Saint-Aubin, Gif-sur-Yvette, 91192 France;4. Synchrotron SOLEIL, L'Orme des Merisiers Saint-Aubin, Gif-sur-Yvette, 91192 France

Institut de Chimie et des Matériaux Paris-Est, CNRS UMR 7182 – UPEC, 2–8 rue Henri Dunant, Thiais, 94320 France;5. J-PARC Center, Japan Atomic Energy Agency, Tokai, Ibaraki, 319-1195 Japan

Abstract:The soft nature of organic–inorganic halide perovskites renders their lattice particularly tunable to external stimuli such as pressure, undoubtedly offering an effective way to modify their structure for extraordinary optoelectronic properties. Here, using the methylammonium lead iodide as a representative exploratory platform, it is observed that the pressure-driven lattice disorder can be significantly suppressed via hydrogen isotope effect, which is crucial for better optical and mechanical properties previously unattainable. By a comprehensive in situ neutron/synchrotron-based analysis and optical characterizations, a remarkable photoluminescence (PL) enhancement by threefold is convinced in deuterated CD3ND3PbI3, which also shows much greater structural robustness with retainable PL after high peak-pressure compression–decompression cycle. With the first-principles calculations, an atomic level understanding of the strong correlation among the organic sublattice and lead iodide octahedral framework and structural photonics is proposed, where the less dynamic CD3ND3+ cations are vital to maintain the long-range crystalline order through steric and Coulombic interactions. These results also show that CD3ND3PbI3-based solar cell has comparable photovoltaic performance as CH3NH3PbI3-based device but exhibits considerably slower degradation behavior, thus representing a paradigm by suggesting isotope-functionalized perovskite materials for better materials-by-design and more stable photovoltaic application.
Keywords:perovskite  high-pressure  bandgap  mechanical and optical properties  stability
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