Quantum circuits with multiterminal Josephson-Andreev junctions
- URL: http://arxiv.org/abs/2312.17305v2
- Date: Sun, 18 Aug 2024 16:52:23 GMT
- Title: Quantum circuits with multiterminal Josephson-Andreev junctions
- Authors: F. J. Matute-CaƱadas, L. Tosi, A. Levy Yeyati,
- Abstract summary: We explore superconducting quantum circuits where several leads are simultaneously connected beyond the tunneling regime.
We find situations of practical interest where the circuits can be used to define noise protected qubits.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We explore superconducting quantum circuits where several leads are simultaneously connected beyond the tunneling regime, such that the fermionic structure of Andreev bound states in the resulting multiterminal Josephson junction influences the states of the full circuit. Using a simple model of single channel contacts and a single level in the middle region, we discuss different circuit configurations where the leads are islands with finite capacitance and/or form loops with finite inductance. We find situations of practical interest where the circuits can be used to define noise protected qubits, which map to the bifluxon and $0{-}\pi$ qubits in the tunneling regime. We also point out the subtleties of the gauge choice for a proper description of these quantum circuits dynamics.
Related papers
- Of gyrators and anyons [0.0]
We show how generic multiterminal circuits can be expressed as gyrator networks with quantized gyration conductance.
Circular scattering in three-terminal quantum dot chains gives rise to a flat topological ground state.
We provide concepts for error correction protocols, and quantum simulations of interacting fermionic (or generally anyonic) many-body systems.
arXiv Detail & Related papers (2024-10-28T08:34:22Z) - Coherent excitation transport through ring-shaped networks [0.0]
coherent quantum transport of matter wave through a ring-shaped circuit attached to leads defines an iconic system in mesoscopic physics.
We study the source-to-drain transport of excitations going through a ring-network, without propagation of matter waves.
arXiv Detail & Related papers (2023-10-27T08:31:20Z) - Tunneling of fluxons via a Josephson resonant level [0.0]
A superconducting loop can be coherently coupled by quantum phase slips occurring at a weak link such as a Josephson junction.
We analyze this scenario by computing the coupling between fluxons as the level is brought into resonance with the superconducting condensate.
These findings can inform experiments on bifluxon qubits as well as the design of novel types of protected qubits.
arXiv Detail & Related papers (2023-10-04T18:33:30Z) - Circuit Cutting with Non-Maximally Entangled States [59.11160990637615]
Distributed quantum computing combines the computational power of multiple devices to overcome the limitations of individual devices.
circuit cutting techniques enable the distribution of quantum computations through classical communication.
Quantum teleportation allows the distribution of quantum computations without an exponential increase in shots.
We propose a novel circuit cutting technique that leverages non-maximally entangled qubit pairs.
arXiv Detail & Related papers (2023-06-21T08:03:34Z) - Quantum emulation of the transient dynamics in the multistate
Landau-Zener model [50.591267188664666]
We study the transient dynamics in the multistate Landau-Zener model as a function of the Landau-Zener velocity.
Our experiments pave the way for more complex simulations with qubits coupled to an engineered bosonic mode spectrum.
arXiv Detail & Related papers (2022-11-26T15:04:11Z) - Pauli component erasing quantum channels [58.720142291102135]
We propose a family of quantum maps that preserve or completely erase the components of a multi-qubit system.
For the corresponding channels, it is shown that the preserved components can be interpreted as a finite vector subspace.
We show that the obtained family of channels forms a semigroup and derive its generators.
arXiv Detail & Related papers (2022-05-12T00:11:43Z) - Circuit connectivity boosts by quantum-classical-quantum interfaces [0.4194295877935867]
High-connectivity circuits are a major roadblock for current quantum hardware.
We propose a hybrid classical-quantum algorithm to simulate such circuits without swap-gate ladders.
We numerically show the efficacy of our method for a Bell-state circuit for two increasingly distant qubits.
arXiv Detail & Related papers (2022-03-09T19:00:02Z) - Moving beyond the transmon: Noise-protected superconducting quantum
circuits [55.49561173538925]
superconducting circuits offer opportunities to store and process quantum information with high fidelity.
Noise-protected devices constitute a new class of qubits in which the computational states are largely decoupled from local noise channels.
This Perspective reviews the theoretical principles at the heart of these new qubits, describes recent experiments, and highlights the potential of robust encoding of quantum information in superconducting qubits.
arXiv Detail & Related papers (2021-06-18T18:00:13Z) - Circuit Quantum Electrodynamics [62.997667081978825]
Quantum mechanical effects at the macroscopic level were first explored in Josephson junction-based superconducting circuits in the 1980s.
In the last twenty years, the emergence of quantum information science has intensified research toward using these circuits as qubits in quantum information processors.
The field of circuit quantum electrodynamics (QED) has now become an independent and thriving field of research in its own right.
arXiv Detail & Related papers (2020-05-26T12:47:38Z) - Hardware-Encoding Grid States in a Non-Reciprocal Superconducting
Circuit [62.997667081978825]
We present a circuit design composed of a non-reciprocal device and Josephson junctions whose ground space is doubly degenerate and the ground states are approximate codewords of the Gottesman-Kitaev-Preskill (GKP) code.
We find that the circuit is naturally protected against the common noise channels in superconducting circuits, such as charge and flux noise, implying that it can be used for passive quantum error correction.
arXiv Detail & Related papers (2020-02-18T16:45:09Z)
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.