返回
Programmable Coding Acoustic Topological Insulator
DOI:10.1002/adma.201805002.png)
摘要
En 中文
Topological acoustics has recently revolutionized fundamental concepts of acoustic propagation, giving rise to strikingly unique acoustic edge modes immune to backscattering. Despite the rapid progress in this field, simultaneous realization of reconfigurability, intelligentization, and automatic control over acoustic propagation paths is posing a great challenge. This challenge is overcome by proposing the concept of a programmable acoustic topological insulator based on two digital elements 0 or 1, which consist of honeycomb-lattice sonic crystals made of cylindrical rods with different diameters. The acoustic propagation paths in the topological insulators can be controlled automatically by programming different coding sequences, which arises from efficient transformation of pseudospin-dependent edge modes on both interfaces of the digital elements. More importantly, a unique unit is experimentally fabricated that has either a 0 or 1 response automatically manipulated by an air cylinder, and design topological insulators with programmable functionality, to realize three digital acoustic devices, such as a single-pole double-throw switch, a single-pole single-throw switch, and a tunable logic gate. The proposed programmable topological insulators may enable future intelligent acoustic devices with exciting reconfigurable and programmable functionalities, which may lead to important advances in various applications, such as integrated acoustics, acoustic security, and information processing.
Keyword:
acoustic topological insulators
logic gates
programmable coding devices
pseudospin-dependent edge modes
AI总结
对已上传原文的论文进行重点信息的提取,主要内容包括:简要概述、研究摘要、背景介绍、关键亮点、图文解析、展望与总结。
期刊
IF:
26.8
论文数:
3.4W
被引数:
46.0W
机构
引用论文
Pseudo-time-reversal symmetry and topological edge states in two-dimensional acoustic crystals
SCIENTIFIC REPORTS
IF3.9
Observation of zone folding induced acoustic topological insulators and the role of spin-mixing defects
PHYSICAL REVIEW B
IF3.7
Experimental demonstration of topologically protected efficient sound propagation in an acoustic waveguide network
PHYSICAL REVIEW B
IF3.7
First-principles study of Dirac and Dirac-like cones in phononic and photonic crystals
PHYSICAL REVIEW B
IF3.7

