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Two-kind boson mixture honeycomb Hamiltonian of Bloch exciton-polaritons

机译:两种玻色子混合物蜂窝汉密尔顿汉密尔顿汉密尔顿汉密特

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摘要

The electronic band structure of a solid is a collection of allowed bands separated by forbidden bands, revealing the geometric symmetry of the crystal structures. Comprehensive knowledge of the band structure with band parameters explains intrinsic physical, chemical, and mechanical properties of the solid. Here we report the artificial polaritonic band structures of two-dimensional honeycomb lattices for microcavity exciton-polaritons using GaAs semiconductors in the wide-range detuning values, from cavity photonlike (red-detuned) to excitonlike (blue-detuned) regimes. In order to understand the experimental band structures and their band parameters, such as gap energies, bandwidths, hopping integrals, and density of states, we originally establish a polariton band theory within an augmented plane wave method with two-kind bosons, cavity photons trapped at the lattice sites, and freely moving excitons. In particular, this two-kind band theory is absolutely essential to elucidate the exciton effect in the band structures of blue-detuned exciton-polaritons, where the flattened excitonlike dispersion appears at larger in-plane momentum values captured in our experimental access window. We reach an excellent agreement between theory and experiments in all detuning values.
机译:固体的电子带结构是由禁用带分离的允许条带的集合,揭示晶体结构的几何对称。具有带参数的频带结构的全面知识解释了固体的内在物理,化学和机械性能。在这里,我们在宽范围的静脉静脉值中使用GaAs半导体,从空腔光子(红旋转)到excitonlike(蓝色旋转)状态,向微腔激励胶片 - 极性子的人工偏振子 - 极性子的人工偏振子带结构为了理解实验频带结构及其频带参数,例如间隙能量,带宽,跳跃积分和状态的密度,我们最初在具有双种玻焦的增强平面波法中建立一个Parititon频段理论,腔光子捕获在格子网站,自由移动激子。特别地,这种双种频段理论绝对必要,以阐明蓝色障碍激子 - 极性子的带状结构中的激子效应,其中扁平的激素状分散在我们的实验进入窗口中捕获的较大面内动量值。我们在所有损伤价值中的理论和实验之间达成了很好的一致性。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2019年第4期|045302.1-045302.10|共10页
  • 作者单位

    Univ Waterloo Inst Quantum Comp 200 Univ Ave West Waterloo ON N2L 3G1 Canada|Univ Maryland Condensed Matter Theory Ctr College Pk MD 20742 USA|Univ Maryland Dept Phys Joint Quantum Inst College Pk MD 20742 USA;

    Univ Wurzbug Phys Inst Tech Phys D-97074 Wurzburg Germany;

    Univ Waterloo Inst Quantum Comp 200 Univ Ave West Waterloo ON N2L 3G1 Canada|Univ Waterloo Dept Elect & Comp Engn 200 Univ Ave West Waterloo ON N2L 3G1 Canada;

    Univ Texas Austin Dept Phys Austin TX 78712 USA;

    Univ Wurzbug Phys Inst Tech Phys D-97074 Wurzburg Germany;

    Univ Wurzbug Phys Inst Tech Phys D-97074 Wurzburg Germany;

    Univ Wurzbug Phys Inst Tech Phys D-97074 Wurzburg Germany;

    Univ Wurzbug Phys Inst Tech Phys D-97074 Wurzburg Germany;

    Univ Wurzbug Phys Inst Tech Phys D-97074 Wurzburg Germany;

    East China Normal Univ Sch Phys & Mat Sci State Key Lab Precis Spect Shanghai 200062 Peoples R China|New York Univ Shanghai 1555 Century Ave Shanghai 200122 Peoples R China|NYU Shanghai NYU ECNU Inst Phys 366 Zhongshan Rd North Shanghai 200062 Peoples R China|NYU Dept Phys New York NY 10003 USA;

    Univ Wurzbug Phys Inst Tech Phys D-97074 Wurzburg Germany|Univ St Andrews Sch Phys & Astron St Andrews KY16 9SS Fife Scotland;

    Univ Waterloo Inst Quantum Comp 200 Univ Ave West Waterloo ON N2L 3G1 Canada|Univ Waterloo Dept Elect & Comp Engn 200 Univ Ave West Waterloo ON N2L 3G1 Canada|Univ Waterloo Dept Phys & Astron 200 Univ Ave West Waterloo ON N2L 3G1 Canada|Univ Waterloo Dept Chem 200 Univ Ave West Waterloo ON N2L 3G1 Canada;

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