Manipulating Fock states of a harmonic oscillator while preserving its linearity

We present a scheme for controlling the quantum state of a harmonic oscillator by coupling it to an anharmonic multilevel system (MLS) with first- to second-excited-state transition on resonance with the oscillator. In this scheme, which we call ef-resonant, the spurious oscillator Kerr nonlinearity...

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Veröffentlicht in:Physical review. A 2016-12, Vol.94 (6), Article 063861
Hauptverfasser: Juliusson, K., Bernon, S., Zhou, X., Schmitt, V., le Sueur, H., Bertet, P., Vion, D., Mirrahimi, M., Rouchon, P., Esteve, D.
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Sprache:eng
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Zusammenfassung:We present a scheme for controlling the quantum state of a harmonic oscillator by coupling it to an anharmonic multilevel system (MLS) with first- to second-excited-state transition on resonance with the oscillator. In this scheme, which we call ef-resonant, the spurious oscillator Kerr nonlinearity inherited from the MLS is very small, while its Fock states can still be selectively addressed via an MLS transition at a frequency that depends on the number of photons. We implement this concept in a circuit-QED setup with a microwave three-dimensional cavity (the oscillator, with frequency 6.4 GHz and quality factor QO=2×10 6) embedding a frequency tunable transmon qubit (the MLS). We characterize the system spectroscopically and demonstrate selective addressing of Fock states and a Kerr nonlinearity below 350 Hz. At times much longer than the transmon coherence times, a nonlinear cavity response with driving power is also observed and explained.
ISSN:2469-9926
1050-2947
2469-9934
1094-1622
DOI:10.1103/PhysRevA.94.063861