Programmable dual-band acoustic topological insulator with dynamically movable interface states

Author:

Ge Yong1ORCID,Shi Bin-jie1ORCID,Xia Jian-ping1ORCID,Sun Hong-xiang12ORCID,Yuan Shou-qi1ORCID,Xue Haoran3ORCID,Zhang Baile34ORCID

Affiliation:

1. Research Center of Fluid Machinery Engineering and Technology, School of Physics and Electronic Engineering, Jiangsu University 1 , Zhenjiang 212013, China

2. State Key Laboratory of Acoustics, Institute of Acoustics, Chinese Academy of Sciences 2 , Beijing 100190, China

3. Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link 3 , Singapore 637371, Singapore

4. Centre for Disruptive Photonic Technologies, The Photonics Institute, Nanyang Technological University, 50 Nanyang Avenue 4 , Singapore 639798, Singapore

Abstract

Topological acoustic interface states in one-dimensional (1D) acoustic topological insulators (ATIs) are zero-dimensional (0D) topological states localized at an interface. Unlike topological edge states that can propagate to deliver information in acoustic waveguides, the 0D topological interface states generally cannot serve as information carriers to deliver information from one location to another due to their intrinsic localization. Here, we design and demonstrate a 1D ATI with a movable interface, enabling the 0D topological acoustic interface states to deliver information from one location to another. The ATI design is based on two types of elemental building blocks—denoted as “1” and “0”—which are programmable. These elements of 1 and 0, when periodically arranged, can form topologically distinct crystals, whose interface hosts acoustic topological interface states in two bandgaps simultaneously. Since these two types of elements can switch from each other with external control, a programmable 1D dual-band ATI can be constructed. By programming coding sequences of 1 and 0 elements, we can observe dynamically movable 0D topological interface states riding on a moving interface along the 1D ATI in both bandgaps. Our work opens an avenue to develop topological acoustic devices with programmable and dynamic functions, which may have a variety of potential applications in the fields of energy trapping, topological pumping, information processing, and sound communication.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Singapore National Research Foundation

Singapore Ministry of Education

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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