Giant nonlinearity via breaking parity-time symmetry: a route to low-threshold phonon diodes
Jing Zhang, Bo Peng, Sahin Kaya Ozdemir, Yu-xi Liu, Hui, Jing, Xin-you Lu, Yu-long Liu, Lan Yang, Franco Nori

TL;DR
This paper introduces a novel on-chip phonon diode leveraging c0d5-symmetry to amplify mechanical nonlinearity, enabling low-threshold, unidirectional phonon transport with potential applications in phononic and hybrid devices.
Contribution
The authors demonstrate a mechanism to enhance mechanical nonlinearity using c0d5-symmetric structures, enabling low-threshold, nonreciprocal phonon devices.
Findings
Enhanced nonlinearity occurs at the c0d5-symmetry breaking transition.
The phonon diode achieves over three orders of magnitude reduction in input threshold.
Proposed device is experimentally feasible and operates losslessly.
Abstract
Nonreciprocal devices that permit wave transmission in only one direction are indispensible in many fields of science including, e.g., electronics, optics, acoustics, and thermodynamics. Manipulating phonons using such nonreciprocal devices may have a range of applications such as phonon diodes, transistors, switches, etc. One way of achieving nonreciprocal phononic devices is to use materials with strong nonlinear response to phonons. However, it is not easy to obtain the required strong mechanical nonlinearity, especially for few-phonon situations. Here, we present a general mechanism to amplify nonlinearity using -symmetric structures, and show that an on-chip micro-scale phonon diode can be fabricated using a -symmetric mechanical system, in which a lossy mechanical-resonator with very weak mechanical nonlinearity is coupled to a mechanical resonator with…
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