Controlling long-lived mechanical oscillators with a transmon qubit (Part II)
ORAL
Abstract
The long lifetimes of mechanical oscillators at cryogenic temperatures combined with their compact geometry make them promising candidates as bosonic elements in a variety of quantum applications. However, achieving deterministic quantum control and long lifetimes in a single mechanical system remains a challenge, limiting the utility of quantum acoustics systems. Here, we demonstrate strong coupling between a transmon qubit and a silicon mechanical oscillator by utilizing an electrostatic bias field [1]. We verify that this system operates in the quantum ground state and use it to prepare non-classical states of motion. Additionally, we use the qubit as a sensitive probe for studying quantum decoherence of the mechanical oscillator. We find mechanical energy loss to be extremely small in our system, with the coherence limited by dephasing. We further find that dephasing can be effectively mitigated via dynamical decoupling operations, which are enabled by the transmon qubit in our system.
Part 2 of the talk demonstrates the realization of non-classical states in mechanical oscillators and reports the measurements of long decay and coherence times.
[1] Bozkurt, A. et al. Nat. Phys. 19(9), 1326-1332 (2023)
Part 2 of the talk demonstrates the realization of non-classical states in mechanical oscillators and reports the measurements of long decay and coherence times.
[1] Bozkurt, A. et al. Nat. Phys. 19(9), 1326-1332 (2023)
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Presenters
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Omid Golami
Caltech
Authors
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Omid Golami
Caltech
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Alkim Bozkurt
Caltech
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Yue Yu
Caltech
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Hao Tian
California Institute of Technology, Caltech
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Mohammad Mirhosseini
Caltech