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Chirality transfer, inversion symmetry breaking and spin-splitting in layered perovskites

ORAL · Invited

Abstract

The strongly spin-orbit coupled conduction bands of layered (so-called two-dimensional) organic-inorganic lead halide perovskites can show large spin splittings, suggesting the possibility of spin-selective transport and future spintronic applications. We here use high-precision, all-electron first-principles theory (FHI-aims code [1,2]) to show how chiral organic components, structural transfer of chirality, inversion asymmetry and spin splitting and spin texture in layered perovskites are quantitatively linked [3,4]. Crystalline layered perovskites can be synthesized as high-quality single crystals, leading to unit cell sizes of hundreds of atoms (over 1,000 atoms in simulations that include defects). We computationally address their structure and electronic properties by dispersion-corrected semilocal and hybrid DFT and an efficient treatment of spin-orbit coupling, benchmarked against a fully relativistic, quasi-four-component electronic structure method [5]. Our approach faithfully predicts the quantum-well character of complex layered perovskites. We then show how introducing a particular chiral molecule can distort the inorganic structure so as to create strong spin splitting in the conduction bands of the quantum well [3]. Based on a group of chiral organic-inorganic crystalline layered perovskites, we finally show that a particular bond angle difference in the structure can serve as a faithful predictor of conduction band spin splitting in this promising class of semiconductor materials [4].

Publication: [1] V. Blum, R. Gehrke, F. Hanke, P. Havu, V. Havu, X. Ren, K. Reuter and M. Scheffler, "Ab initio molecular simulations with numeric atom-centered orbitals," Computer Physics Communications 180, 2175-2196 (2009).<br>[2] William P. Huhn and Volker Blum, "One-hundred-three Compound Band Structure Benchmark of Post-Selfconsistent Spin-Orbit Coupling Treatments in Density-Functional Theory," Physical Review Materials 1, 033803 (2017).<br>[3] Manoj K. Jana, Ruyi Song, Yi Xie, Rundong Zhao, Peter C. Sercel, Volker Blum and David B. Mitzi, "Structural descriptor for enhanced spin-splitting in 2D hybrid perovskites," Nature Communications 12, 4982 (2021). <br>[4] Manoj K. Jana, Ruyi Song, Haoliang Liu, Dipak Rajkhanal, Svenja M. Janke, Chi Liu, Rundong Zhao, Z. Valy Vardeny, Volker Blum and David B. Mitzi, "Organic-to-inorganic structural chirality transfer in a 2D hybrid perovskite: Impact on Rashba-Dresselhaus spin-orbit coupling," Nature Communications 11, 4699 (2020).<br>[5] Rundong Zhao, Victor Wen-zhe Yu, Kimberly Zhang, Yunlong Xiao, Yong Zhang and Volker Blum, "Quasi-Four-Component Method with Numeric Atom-Centered Orbitals for Relativistic Density Functional Simulations of Molecules and Solids," Physical Review B 103, 255144 (2021).

Presenters

  • Volker Blum

    Duke University

Authors

  • Volker Blum

    Duke University