Pith. sign in

Noise-induced quantum-circuit refrigeration

1 Pith paper cite this work. Polarity classification is still indexing.

1 Pith paper citing it
abstract

We use a transmon qubit and its dispersively coupled readout resonator to measure the Fock state populations of another microwave resonator, to which we have attached a quantum-circuit refrigerator (QCR). First, we apply noise generated at room temperature to the resonator and show that such noise drive leads to a thermal distribution of the resonator Fock states. Subsequently, we detune the noise frequency band far away from the resonance condition and vary the power of the noise applied on the QCR. We observe that such artificial thermal noise may lead to major damping of a coherent state of the resonator. Importantly, we also demonstrate that the effective temperature of a thermal resonator state can be reduced from roughly 300 mK to 130 mK by the introduction of the artificial thermal noise. These observations pave the way for a purely thermally powered quantum-circuit refrigerator which may unlock the use of waste heat in resetting superconducting qubits in a quantum processor and in building autonomous quantum heat engines.

citation-role summary

background 1

citation-polarity summary

years

2025 1

verdicts

CONDITIONAL 1

roles

background 1

polarities

background 1

representative citing papers

Photonic heat amplifiers based on a disordered semiconductor

cond-mat.mes-hall · 2025-02-06 · conditional · novelty 6.0

A proposed photonic heat amplifier uses variable-range-hopping semiconductor reservoirs to achieve negative differential thermal conductance, yielding predicted heat-current amplification up to 15x and temperature gain up to 3.3x at millikelvin temperatures.

citing papers explorer

Showing 1 of 1 citing paper.

  • Photonic heat amplifiers based on a disordered semiconductor cond-mat.mes-hall · 2025-02-06 · conditional · none · ref 55 · internal anchor

    A proposed photonic heat amplifier uses variable-range-hopping semiconductor reservoirs to achieve negative differential thermal conductance, yielding predicted heat-current amplification up to 15x and temperature gain up to 3.3x at millikelvin temperatures.