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Phononic bandgap nano-acoustic cavity with ultralong phonon lifetime

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arxiv 1901.04129 v1 pith:PGATUSJX submitted 2019-01-14 cond-mat.mes-hall quant-ph

classification cond-mat.mes-hallquant-ph
keywords cavityacousticbandgaplifetimephononphononicquantummeasurements
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abstract

We present measurements at millikelvin temperatures of the microwave-frequency acoustic properties of a crystalline silicon nanobeam cavity incorporating a phononic bandgap clamping structure for acoustic confinement. Utilizing pulsed laser light to excite a co-localized optical mode of the nanobeam cavity, we measure the dynamics of cavity acoustic modes with single-phonon sensitivity. Energy ringdown measurements for the fundamental $5$~GHz acoustic mode of the cavity shows an exponential increase in phonon lifetime versus number of periods in the phononic bandgap shield, increasing up to $\tau \approx 1.5$~seconds. This ultralong lifetime, corresponding to an effective phonon propagation length of several kilometers, is found to be consistent with damping from non-resonant two-level system defects on the surface of the silicon device. Potential applications of these ultra-coherent nanoscale mechanical resonators range from tests of various collapse models of quantum mechanics to miniature quantum memory elements in hybrid superconducting quantum circuits.

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  1. Nanomechanical test of quantum linearity

    quant-ph 2019-09 conditional novelty 7.0 of 10

    A proposed high-frequency nanomechanical phonon-counting experiment could test spontaneous collapse models down to a collapse rate of 1e-12 per second, covering both Adler's and Bassi et al.'s predicted bounds.

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