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狄拉克材料中拓扑有序量子相的电动力学

Electrodynamics of Topologically Ordered Quantum Phases in Dirac Materials.

作者信息

Hussien Musa A M, Ukpong Aniekan Magnus

机构信息

Theoretical and Computational Condensed Matter and Materials Physics Group, School of Chemistry and Physics, College of Agriculture, Engineering and Science, University of KwaZulu-Natal, Pietermaritzburg 3201, South Africa.

出版信息

Nanomaterials (Basel). 2021 Oct 30;11(11):2914. doi: 10.3390/nano11112914.

Abstract

First-principles calculations of the electronic ground state in tantalum arsenide are combined with tight-binding calculations of the field dependence of its transport model equivalent on the graphene monolayer to study the emergence of topologically ordered quantum states, and to obtain topological phase diagrams. Our calculations include the degrees of freedom for nuclear, electronic, and photonic interactions explicitly within the quasistatic approximation to the time-propagation-dependent density functional theory. This field-theoretic approach allows us to determine the non-linear response of the ground state density matrix to the applied electromagnetic field at distinct quantum phase transition points. Our results suggest the existence of a facile electronic switch between trivial and topologically ordered quantum states that may be realizable through the application of a perpendicular electric or magnetic field alongside a staggered-sublattice potential in the underlying lattice. Signatures of the near field electrodynamics in nanoclusters show the formation of a quantum fluid phase at the topological quantum phase transition points. The emergent carrier density wave transport phase is discussed to show that transmission through the collective excitation mode in multilayer heterostructures is a unique possibility in plasmonic, optoelectronic, and photonic applications when atomic clusters of Dirac materials are integrated within nanostructures, as patterned or continuous surfaces.

摘要

对砷化钽电子基态的第一性原理计算与石墨烯单层等效输运模型的场依赖性紧束缚计算相结合,以研究拓扑有序量子态的出现,并获得拓扑相图。我们的计算在依赖于时间传播的密度泛函理论的准静态近似中明确包含了核、电子和光子相互作用的自由度。这种场论方法使我们能够确定基态密度矩阵在不同量子相变点对所施加电磁场的非线性响应。我们的结果表明,在平凡量子态和拓扑有序量子态之间存在一种易于实现的电子开关,通过在底层晶格中施加垂直电场或磁场以及交错亚晶格势可能实现。纳米团簇中近场电动力学的特征表明在拓扑量子相变点形成了量子流体相。讨论了出现的载流子密度波输运相,以表明当狄拉克材料的原子团簇集成在纳米结构中(如图案化或连续表面)时,通过多层异质结构中的集体激发模式进行传输在等离子体、光电子和光子应用中是一种独特的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e79/8619574/51c0af728cca/nanomaterials-11-02914-g001.jpg

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