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Ground-state cooling of a carbon nanomechanical resonator by spin-polarized current

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arxiv 1404.0485 v3 pith:4WXO3GUD submitted 2014-04-02 cond-mat.mes-hall

Ground-state cooling of a carbon nanomechanical resonator by spin-polarized current

classification cond-mat.mes-hall
keywords coolingspincarboncurrentground-statemechanicalnanomechanicalquantum
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

We study the nonequilibrium steady state of a mechanical resonator in the quantum regime realized by a suspended carbon nanotube quantum dot contacted by two ferromagnets. Because of the spin-orbit interaction and/or an external magnetic field gradient, the spin on the dot couples directly to the flexural eigenmodes. Accordingly, the nanomechanical motion induces inelastic spin flips of the tunneling electrons. A spin-polarized current at finite bias voltage causes either heating or active cooling of the mechanical modes. We show that maximal cooling is achieved at resonant transport when the energy splitting between two dot levels of opposite spin equals the vibrational frequency. Even for weak electron-resonator coupling and moderate polarizations we can achieve ground-state cooling with a temperature of the leads, for instance, of $T=10\omega$.

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