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    Damping-dependent thermalization of neighboring nanomechanical resonators below 1 mK

    Amir Youssefi1,2,*, Mahdi Chegnizadeh1,3,4,5,*, Francis Bettsworth6, Richard Pedurand6, Eddy Collin6, Tobias J. Kippenberg1,3,4,5, and Andrew Fefferman6,†

    • 1Laboratory of Photonics and Quantum Measurement (LPQM), Swiss Federal Institute of Technology Lausanne (EPFL), Lausanne, Switzerland
    • 2EDWATEC SA, EPFL Innovation Park Bâtiment D, 1015-Lausanne, Switzerland
    • 3Center for Quantum Science and Engineering, EPFL, Lausanne, Switzerland
    • 4Institute of Physics, Swiss Federal Institute of Technology Lausanne (EPFL), Lausanne, Switzerland
    • 5Institute of Electrical and Micro Engineering, Swiss Federal Institute of Technology Lausanne (EPFL), Lausanne, Switzerland
    • 6Université Grenoble Alpes, CNRS, Grenoble INP, Institut Néel, 38000 Grenoble, France

    • *These authors contributed equally to this work.
    • †Contact author: andrew.fefferman@neel.cnrs.fr

    Phys. Rev. B 114, 204103 – Published 6 October, 2026

    DOI: https://doi.org/10.1103/6sbx-py9y

    Abstract

    The position noise spectra of six drums on a single chip were measured on a single cooldown below 1.3 K. Cryostat temperatures as low as 0.7 mK were achieved. The temperature dependence of the resonance frequency and linewidth of the drum modes was analyzed in the framework of the tunneling two-level system (TLS) model. Departures of the resonance frequency and the position noise power from the expected logarithmic and linear temperature dependences, respectively, were interpreted as indications of thermal decoupling from the cryostat. This previously unexplored measurement configuration revealed that similar neighboring drums on a single chip may be at different temperatures. At the lowest temperatures, some drums exhibited excess damping that decreased with temperature. The magnitude of the excess damping of the drums was correlated with the thermal coupling of their TLS to the cryostat. In the case of one drum, a temporary increase in its damping coincided with a decrease in its mode temperature. The thermalization of the TLS to the cold finger was independent of pump power, pulse tube state and temperature of the precooling stages of the cryostat. These results suggest that thermalization of nanomechanics to the cryostat can be mediated by TLS damping rather than clamping loss and may impact efforts to extend the coherence of mechanical resonators.

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