极化子
卤化物
凝聚态物理
材料科学
热的
热涨落
物理
热力学
核物理学
化学
无机化学
电子
作者
B. Zhao,Jincheng Qi,Xun Xu,Xuan‐Yan Chen,Chuan-Nan Li,Jinshan Li,Chris G. Van de Walle,Xie Zhang
摘要
Recent angle-resolved photoelectron spectroscopy (ARPES) measurements of the hole effective mass in CsPbBr_{3} revealed an enhancement of ∼50% compared to the bare mass computed from first principles for CsPbBr_{3} at T=0 K. This large enhancement was interpreted as evidence of polaron formation. Employing accurate finite-temperature first-principles calculations, we show that the calculated hole effective mass of CsPbBr_{3} at T=300 K can explain experimental results without invoking polarons. Thermal fluctuations are particularly strong in halide perovskites compared to conventional semiconductors such as Si and GaAs, and cannot be ignored when comparing with experiment. We not only resolve the debate on polaron formation in halide perovskites, but also demonstrate the general importance of including thermal fluctuations in first-principles calculations for strongly anharmonic materials.
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