Cesium-involved electron transfer and electron-electron interaction in high-pressure metallic CsPbI3
ORAL
Abstract
The rich electronic properties realized in perovskite oxides have motivated the search for novel electronic states in isostructural halide perovskites and related lattice architectures. By compressing δ-CsPbI3 to 80 GPa, an insulator-to-metal transition occurs, concomitant with the completion of a sluggish structural transition from the one-dimensional (1D) Pnma (δ) phase to a 3D Pmn21 (ε) phase. Deviation from Fermi liquid (FL) behavior is observed in CsPbI3 upon entering the metallic ε phase, which progressively evolves into a FL-like state at 186 GPa. First-principles density functional theory calculations reveal dramatically enhanced electron transfer and sudden increase of the 5d state occupation of Cs and I in the ε phase that strengthen the electron-electron interaction and render FL-like behavior. Our study presents a promising strategy for tuning the electronic interaction in halide perovskites for realizing intriguing electronic states.
*This work was supported by the Department of Energy (DOE), Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division (DE-AC02-76SF00515). Beamline 12.2.2 is a DOE Office of Science User Facility under contract no. DE-AC02-05CH11231. Portions of this work were performed at HPCAT (Sector 16), Advanced Photon Source (APS), Argonne National Laboratory (ANL). HPCAT operations are supported by DOE-NNSA's Office of Experimental Sciences. The APS is a DOE Office of Science User Facility operated for the DOE Office of Science by ANL under Contract No. DE-AC02-06CH11357.
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Presenters
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Feng Ke
- Stanford University