Dissipationless Nonlinearity in Quantum Material Josephson Diodes
- URL: http://arxiv.org/abs/2310.12198v1
- Date: Wed, 18 Oct 2023 18:00:01 GMT
- Title: Dissipationless Nonlinearity in Quantum Material Josephson Diodes
- Authors: Constantin Schrade, Valla Fatemi
- Abstract summary: Dissipationless nonlinearities for three-wave mixing are a key component of many superconducting quantum devices.
We develop an alternative approach to realize third-order nonlinearities from gate-tunable and intrinsically symmetry-broken quantum material Josephson junctions.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Dissipationless nonlinearities for three-wave mixing are a key component of
many superconducting quantum devices, such as amplifiers and bosonic qubits. So
far, such third-order nonlinearities have been primarily achieved with circuits
of concatenated Josephson tunnel junctions. In this work, we theoretically
develop an alternative approach to realize third-order nonlinearities from
gate-tunable and intrinsically symmetry-broken quantum material Josephson
junctions. We illustrate this approach on two examples, an Andreev
interferometer and a magnetic Josephson junction. Our results show that both
setups enable Kerr-free three-wave mixing for a broad range of frequencies, an
attribute that is highly desirable for amplifier applications. Moreover, we
also find that the magnetic junction constitutes a paradigmatic example for
three-wave mixing in a minimal single-junction device without the need for any
external biases. We hope that our work will guide the search of dissipationless
nonlinearities in quantum material superconducting devices and inspire new ways
of characterizing symmetry-breaking in quantum materials with microwave
techniques.
Related papers
- A mechanical qubit [2.123237925838863]
Single-phonon anharmonicity in our system exceeds the decoherence rate by a factor of 6.8.
Our work adds another unique capability to a powerful quantum acoustics platform for quantum simulations, sensing, and information processing.
arXiv Detail & Related papers (2024-06-11T15:27:02Z) - Josephson bifurcation readout: beyond the monochromatic approximation [49.1574468325115]
We analyze properties of bifurcation quantum detectors based on weakly nonlinear superconducting resonance circuits.
This circuit can serve as an efficient detector of the quantum state of superconducting qubits.
arXiv Detail & Related papers (2024-05-25T22:22:37Z) - Quantum noise dynamics in nonlinear pulse propagation [0.0]
We numerically study quantum noise dynamics and multimode entanglement in several ultrafast systems.
We show that our model exhibits nonlinear dynamics in both the mean field and the quantum correlations.
arXiv Detail & Related papers (2023-07-11T17:50:33Z) - Niobium Quantum Interference Microwave Circuits with Monolithic
Three-Dimensional (3D) Nanobridge Junctions [0.0]
We present the realization of superconducting niobium microwave resonators with integrated, three-dimensional (3D) nanobridge-based superconducting quantum interference devices.
Results reveal great potential for application of these circuits in hybrid systems with e.g. magnons and spin ensembles or in flux-mediated optomechanics.
arXiv Detail & Related papers (2023-05-25T17:31:49Z) - Directional Josephson traveling-wave parametric amplifier via
non-Hermitian topology [58.720142291102135]
Low-noise microwave amplification is crucial for detecting weak signals in quantum technologies and radio astronomy.
Current amplifiers do not satisfy all these requirements, severely limiting the scalability of superconducting quantum devices.
Here, we demonstrate the feasibility of building a near-ideal quantum amplifier using a homogeneous Josephson junction array and the non-trivial topology of its dynamics.
arXiv Detail & Related papers (2022-07-27T18:07:20Z) - A gate-tunable graphene Josephson parametric amplifier [0.31458406135473804]
Superconducting quantum circuits have contributed to dramatic advances in microwave quantum optics.
Superconducting parametric amplifiers, like quantum bits, typically utilize a Josephson junction as a source of magnetically tunable and dissipation-free nonlinearity.
Here we demonstrate a parametric amplifier leveraging a graphene Josephson junction and show that its working frequency is widely tunable with a gate voltage.
arXiv Detail & Related papers (2022-04-05T13:00:40Z) - Designing Kerr Interactions for Quantum Information Processing via
Counterrotating Terms of Asymmetric Josephson-Junction Loops [68.8204255655161]
static cavity nonlinearities typically limit the performance of bosonic quantum error-correcting codes.
Treating the nonlinearity as a perturbation, we derive effective Hamiltonians using the Schrieffer-Wolff transformation.
Results show that a cubic interaction allows to increase the effective rates of both linear and nonlinear operations.
arXiv Detail & Related papers (2021-07-14T15:11:05Z) - A low-loss ferrite circulator as a tunable chiral quantum system [108.66477491099887]
We demonstrate a low-loss waveguide circulator constructed with single-crystalline yttrium iron garnet (YIG) in a 3D cavity.
We show the coherent coupling of its chiral internal modes with integrated superconducting niobium cavities.
We also probe experimentally the effective non-Hermitian dynamics of this system and its effective non-reciprocal eigenmodes.
arXiv Detail & Related papers (2021-06-21T17:34:02Z) - Kerr reversal in Josephson meta-material and traveling wave parametric
amplification [0.0]
We report a versatile Josephson transmission line with strong third order nonlinearity which can be tuned from positive to negative values.
We operate it to demonstrate reversed Kerr phase-matching mechanism in traveling wave parametric amplification.
arXiv Detail & Related papers (2021-01-14T19:00:03Z) - Waveguide quantum optomechanics: parity-time phase transitions in
ultrastrong coupling regime [125.99533416395765]
We show that the simplest set-up of two qubits, harmonically trapped over an optical waveguide, enables the ultrastrong coupling regime of the quantum optomechanical interaction.
The combination of the inherent open nature of the system and the strong optomechanical coupling leads to emerging parity-time (PT) symmetry.
The $mathcalPT$ phase transition drives long-living subradiant states, observable in the state-of-the-art waveguide QED setups.
arXiv Detail & Related papers (2020-07-04T11:02:20Z) - Waveguide Bandgap Engineering with an Array of Superconducting Qubits [101.18253437732933]
We experimentally study a metamaterial made of eight superconducting transmon qubits with local frequency control.
We observe the formation of super- and subradiant states, as well as the emergence of a polaritonic bandgap.
The circuit of this work extends experiments with one and two qubits towards a full-blown quantum metamaterial.
arXiv Detail & Related papers (2020-06-05T09:27:53Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.