电介质
凝聚态物理
激子
材料科学
半导体
异质结
纳米尺度
库仑
带隙
散射
兴奋剂
化学物理
声子
纳米技术
光电子学
物理
光学
量子力学
电子
作者
Archana Raja,Lutz Waldecker,Jonas Zipfel,Yeongsu Cho,Samuel Brem,Jonas D. Ziegler,Marvin Kulig,Takashi Taniguchi,Kenji Watanabe,Ermin Malić,Tony F. Heinz,Timothy C. Berkelbach,Alexey Chernikov
标识
DOI:10.1038/s41565-019-0520-0
摘要
Understanding and controlling disorder is key to nanotechnology and materials science. Traditionally, disorder is attributed to local fluctuations of inherent material properties such as chemical and structural composition, doping or strain. Here, we present a fundamentally new source of disorder in nanoscale systems that is based entirely on the local changes of the Coulomb interaction due to fluctuations of the external dielectric environment. Using two-dimensional semiconductors as prototypes, we experimentally monitor dielectric disorder by probing the statistics and correlations of the exciton resonances, and theoretically analyse the influence of external screening and phonon scattering. Even moderate fluctuations of the dielectric environment are shown to induce large variations of the bandgap and exciton binding energies up to the 100 meV range, often making it a dominant source of inhomogeneities. As a consequence, dielectric disorder has strong implications for both the optical and transport properties of nanoscale materials and their heterostructures.
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