Demonstration of a 3rd order hierarchy of higher order topological states in a three-dimensional acoustic metamaterial
Matthew Weiner, Xiang Ni, Mengyao Li, Andrea Al\`u, and Alexander B., Khanikaev

TL;DR
This paper demonstrates a 3D acoustic metamaterial that supports a hierarchy of higher-order topological states, including third-order corner states and second-order edge states, within the same topological bandgap, using additive manufacturing.
Contribution
It is the first experimental realization of a 3D system exhibiting multiple orders of HOT states co-existing in a single structure.
Findings
Successfully observed third-order (corner) and second-order (edge) topological states in 3D.
Implemented the metamaterial using additive manufacturing for complex geometries.
Showed topological bulk polarization leading to HOT states localization.
Abstract
In the past years classical wave-systems have constituted an excellent platform for emulating complex quantum phenomena. This approach has been especially fruitful in demonstrating topological phenomena in photonics and acoustics: from chiral edge states of Chern insulators and helical edge states of topological insulators to higher-dimensional topological states of quasiperiodic systems and systems with synthetic dimensions. Recently, a new class of topological states localized in more than one dimension of a D-dimensional system, referred to as higher-order topological (HOT) states, has been reported, offering an even more versatile platform to confine and control classical radiation and mechanical motion. However, because experimental research of HOT states has so far been limited to two-dimensional (2D) systems, third and higher-order states have evaded experimental observation.…
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