Topological phonon polaritons in one-dimensional non-Hermitian nanoparticle chains
B. X. Wang, C. Y. Zhao

TL;DR
This paper demonstrates the realization of topological phonon polaritons in one-dimensional non-Hermitian nanoparticle chains, revealing complex topological phenomena including phase transitions, skin effects, and modified topological invariants.
Contribution
It introduces a model of topological phonon polaritons in non-Hermitian nanoparticle chains, analyzing their complex band structure and topological properties with novel insights into non-Hermitian effects.
Findings
Topological edge modes are supported in the dimerized chain with $eta>0.5$.
A topological phase transition occurs for transverse modes with increasing lattice constant.
Non-Hermitian skin effect causes breakdown of bulk-boundary correspondence in finite chains.
Abstract
Topological phonon polaritons (TPhPs) are highly protected and localized edge modes that are capable of achieving a strong confinement of electromagnetic waves and immune to impurities and disorder. Here we realize TPhPs by constructing one-dimensional dimerized silicon carbide nanoparticle chains, which mimic the topological property of the well-known Su-Schrieffer-Heeger (SSH) model. We analytically calculate the complex band structure of such chains by taking all near-field and far-field dipole-dipole interactions into account. For longitudinal modes, we demonstrate that, despite the non-Hermiticity and breaking of the chiral symmetry, the band topology can be still characterized by the complex Zak phase, which is quantized and indicates a topological phase transition when the dimerization parameter changes from less than 0.5 to larger than 0.5, like the conventional…
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