Dynamically induced robust phonon transport and chiral cooling in an optomechanical system
arXiv:1609.08674 · doi:10.1038/s41467-017-00247-7
Abstract
The transport of sound and heat, in the form of phonons, can be limited by disorder-induced scattering. In electronic and optical settings the introduction of chiral transport, in which carrier propagation exhibits parity asymmetry, can remove elastic backscattering and provides robustness against disorder. However, suppression of disorder-induced scattering has never been demonstrated in non-topological phononic systems. Here we experimentally demonstrate a path for achieving robust phonon transport in the presence of material disorder, by explicitly inducing chirality through parity-selective optomechanical coupling. We show that asymmetric optical pumping of a symmetric resonator enables a dramatic chiral cooling of clockwise and counterclockwise phonons, while simultaneously suppressing the hidden action of disorder. Surprisingly, this passive mechanism is also accompanied by a chiral reduction in heat load leading to optical cooling of the mechanics without added damping, an effect that has no optical analogue. This technique can potentially improve upon the fundamental thermal limits of resonant mechanical sensors, which cannot be attained through sideband cooling.
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Cited by in corpus (15)
- Topological Photonics
- Nonreciprocal Photon Blockade
- Breaking time-reversal symmetry with acoustic pumping of nanophotonic circuits
- Nonreciprocal Phonon Laser
- Nonreciprocal ground-state cooling of multiple mechanical resonators
- Beyond Spontaneous Emission: Giant Atom Bounded in Continuum
- Thermal management and non-reciprocal control of phonon flow via optomechanics
- Unconventional quantum sound-matter interactions in spin-optomechanical-crystal hybrid systems
- Optomechanical Kerker effect
- Ground-state cooling of multiple near-degenerate mechanical modes
- Observation of multiple time crystals in a driven-dissipative system with Rydberg gas
- Optomechanical compensatory cooling mechanism with exceptional points
- Spectroscopy and topological properties of a Haldane light system
- Dynamic suppression of Rayleigh light scattering in dielectric resonators
- Synthetic phonons enable nonreciprocal coupling to arbitrary resonator networks