极化子
准粒子
激子
声子
空中骑兵
电荷(物理)
半导体
拓扑(电路)
凝聚态物理
物理
量子力学
超导电性
电子
组合数学
数学
作者
Jon Lafuente-Bartolome,Chao Lian,Feliciano Giustino
标识
DOI:10.1073/pnas.2318151121
摘要
Halide perovskites emerged as a revolutionary family of high-quality semiconductors for solar energy harvesting and energy-efficient lighting. There is mounting evidence that the exceptional optoelectronic properties of these materials could stem from unconventional electron–phonon couplings, and it has been suggested that the formation of polarons and self-trapped excitons could be key to understanding such properties. By performing first-principles simulations across the length scales, here we show that halide perovskites harbor a uniquely rich variety of polaronic species, including small polarons, large polarons, and charge density waves, and we explain a variety of experimental observations. We find that these emergent quasiparticles support topologically nontrivial phonon fields with quantized topological charge, making them nonmagnetic analog of the helical Bloch points found in magnetic skyrmion lattices.
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