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Observation of decoherence in a carbon nanotube mechanical resonator

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arxiv 1503.06815 v2 pith:ROCQNBDH submitted 2015-03-23 cond-mat.mes-hall

classification cond-mat.mes-hall
keywords decoherencemechanicalnanotuberingdownarisecarbondephasingfactor
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In physical systems, decoherence can arise from both dissipative and dephasing processes. In mechanical resonators, the driven frequency response measures a combination of both, while time domain techniques such as ringdown measurements can separate the two. Here, we report the first observation of the mechanical ringdown of a carbon nanotube mechanical resonator. Comparing the mechanical quality factor obtained from frequency- and time-domain measurements, we find a spectral quality factor four times smaller than that measured in ringdown, demonstrating dephasing-induced decoherence of the nanomechanical motion. This decoherence is seen to arise at high driving amplitudes, pointing to a non-linear dephasing mechanism. Our results highlight the importance of time-domain techniques for understanding dissipation in nano-mechanical resonators, and the relevance of decoherence mechanisms in nanotube mechanics.

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  1. Non-Exponential Relaxation in the Rotating Frame of a Driven Nanomechanical Mode

    cond-mat.mes-hall 2025-08 conditional novelty 6.0 of 10

    In a strongly driven nanomechanical mode, ring-down in the rotating frame is non-exponential: the in-phase component initially decays at about twice the rate of the quadrature, as a Duffing model with a dominant secon...

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