Overcoming the fundamental limit of quantum transduction via intraband entanglement
arXiv:2404.09441 · doi:10.1364/OPTICAQ.540881
Abstract
A quantum transducer converts an input signal to an output probe at a distant frequency band while maintaining the quantum information with high fidelity, which is crucial for quantum networking and distributed quantum sensing and computing. In terms of microwave-optical quantum transduction, the state-of-the-art quantum transducers suffer low transduction efficiency from weak nonlinear coupling, wherein increasing pump power to enhance efficiency inevitably leads to thermal noise from heating. Moreover, we reveal that the efficiency-bandwidth product of a cavity electro-optical or electro-optomechanical transducer is fundamentally limited by pump power and nonlinear coupling coefficient, irrespective of cavity engineering efforts. To overcome this fundamental limit, we propose to noiselessly boost the transduction efficiency by consuming intraband entanglement (e.g., microwave-microwave or optical-optical entanglement in the case of microwave-optical transduction). Via a squeezer-coupler-antisqueezer sandwich structure, the protocol enhances the transduction efficiency to unity in the ideal lossless case, given an arbitrarily weak pump and nonlinear coupling. In practical cavity systems, our entanglement-assisted protocol surpasses the non-assisted fundamental limit of the efficiency-bandwidth product and reduces the threshold cooperativity for positive quantum capacity by a factor proportional to two-mode squeezing gain. Given a fixed cooperativity, our approach increases the broadband quantum capacity by orders of magnitude. The entanglement-assisted advantage is robust to ancilla loss and cavity detuning.
8+12 pages, 3+4 figures
References in corpus (27)
- The Quantum Internet
- Detection of 15 dB Squeezed States of Light and their Application for the Absolute Calibration of Photoelectric Quantum Efficiency
- Proposal for an Optomechanical Traveling Wave Phonon-Photon Translator
- Gaussian-state quantum-illumination receivers for target detection
- Strong magnetic coupling of an ultracold gas to a superconducting waveguide cavity
- A magneto-optic modulator with unit quantum effciency
- Quantum-enhanced sensing of displacements and electric fields with large trapped-ion crystals
- Quantum Capacities of Bosonic Channels
- Cavity quantum electro-optics
- A squeezed quantum microcomb on a chip
- Propagating Gottesman-Kitaev-Preskill states encoded in an optical oscillator
- Continuous-wave 6-dB-squeezed light with 2.5-THz-bandwidth from single-mode PPLN waveguide
- Optomechanical quantum teleportation
- Squeezing the quantum noise of a gravitational-wave detector below the standard quantum limit
- Entangling microwaves with optical light
- Broadband Squeezed Microwaves and Amplification with a Josephson Traveling-Wave Parametric Amplifier
- Quantum-enabled interface between microwave and telecom light
- Optomechanical ground-state cooling in a continuous and efficient electro-optic transducer
- Demonstration of Entanglement-Enhanced Covert Sensing
- Ultimate precision limit of noise sensing and dark matter search
- Quantum transduction with adaptive control
- Experimental preparation and manipulation of squeezed cat states via an all-optical in-line squeezer
- Quantum capacities of transducers
- Bandwidth and visibility improvement in detection of a weak signal using mode entanglement and swapping
- Coherent optical control of a superconducting microwave cavity via electro-optical dynamical back-action
- Entanglement Thresholds of Doubly-Parametric Quantum Transducers
- Quantum-enabled continuous microwave-to-optics frequency conversion