极化子
凝聚态物理
声子
材料科学
双极化子
电子
超导电性
物理
量子力学
作者
Kunyan Zhang,Chuliang Fu,Shelly D. Kelly,Liangbo Liang,Seoung‐Hun Kang,Jing Jiang,Ruifang Zhang,Yixiu Wang,Gang Wan,Phum Siriviboon,Mina Yoon,Peide D. Ye,Wenzhuo Wu,Mingda Li,Shengxi Huang
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2025-01-08
卷期号:11 (2): eads4763-eads4763
被引量:6
标识
DOI:10.1126/sciadv.ads4763
摘要
Polarons, quasiparticles from electron-phonon coupling, are crucial for material properties including high-temperature superconductivity and colossal magnetoresistance. However, scarce studies have investigated polaron formation in low-dimensional materials with phonon polarity and electronic structure transitions. In this work, we studied polarons of tellurene, composed of chiral Te chains. The frequency and linewidth of the A 1 phonon, which becomes increasingly polar for thinner tellurene, change abruptly for thickness below 10 nanometers, where field-effect mobility drops rapidly. These phonon and transport signatures, combined with phonon polarity and band structure, suggest a crossover from large polarons in bulk tellurium to small polarons in few-layer tellurene. Effective field theory considering phonon renormalization in the small-polaron regime semiquantitatively reproduces the phonon hardening and broadening effects. This polaron crossover stems from the quasi–one-dimensional nature of tellurene, where modulation of interchain distance reduces dielectric screening and promotes electron-phonon coupling. Our work provides valuable insights into the influence of polarons on phononic, electronic, and structural properties in low-dimensional materials.
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