4.6 Article

Effect of Anisotropic Confinement on Electronic Structure and Dynamics of Band Edge Excitons in Inorganic Perovskite Nanowires

期刊

JOURNAL OF PHYSICAL CHEMISTRY A
卷 124, 期 9, 页码 1867-1876

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpca.9b11981

关键词

-

资金

  1. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, Materials Sciences and Engineering Division within the Physical Chemistry of Inorganic Nanostructures Program [DE-ACO2-05-CH11231, KC3103]
  2. Center for Computational Study of Excited State Phenomena in Energy Materials (C2SEPEM) - U.S. Department of Energy, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division as part of the Computational Materials Sciences Progr [DE-ACO2-05CH11231]
  3. Photonics at Thermodynamic Limits Energy Frontier Research Center - U.S. Department of Energy (DOE), Office of Science, Office of Basic Energy Sciences [DE-SC0019140]
  4. Center for Hybrid Organic Inorganic Semiconductors for Energy (CHOISE), an Energy Frontier Research Center - Office of Basic Energy Sciences, Office of Science within the U.S. Department of Energy
  5. U.S. Office of Naval Research through the U.S. Naval Research Laboratory's core research program
  6. Laboratory-University Collaboration Initiative of the DoD Basic Research Office
  7. National Science Foundation [DGE 1106400]
  8. Alfred P. Sloan Research Fellowship
  9. David and Lucile Packard Foundation
  10. Camille and Henry Dreyfus Teacher-Scholar Award

向作者/读者索取更多资源

Inorganic lead halide perovskite nanostructures show promise as the active layers in photovoltaics, light emitting diodes, and other optoelectronic devices. They are robust in the presence of oxygen and water, and the electronic structure and dynamics of these nanostructures can be tuned through quantum confinement. Here we create aligned bundles of CsPbBr3 nanowires with widths resulting in quantum confinement of the electronic wave functions and subject them to ultrafast microscopy. We directly image rapid one-dimensional exciton diffusion along the nanowires, and we measure an exciton trap density of roughly one per nanowire. Using transient absorption microscopy, we observe a polarization-dependent splitting of the band edge exciton line, and from the polarized fluorescence of nanowires in solution, we determine that the exciton transition dipole moments are anisotropic in strength. Our observations are consistent with a model in which splitting is driven by shape anisotropy in conjunction with long-range exchange.

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.6
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

暂无数据
暂无数据