Preparing ground states of the XXZ model using the quantum annealing
with inductively coupled superconducting flux qubits
- URL: http://arxiv.org/abs/2112.12419v1
- Date: Thu, 23 Dec 2021 09:05:49 GMT
- Title: Preparing ground states of the XXZ model using the quantum annealing
with inductively coupled superconducting flux qubits
- Authors: Takashi Imoto, Yuya Seki, Yuichiro Matsuzaki
- Abstract summary: Preparation of ground states of Hamiltonians is important in condensed matter physics and quantum chemistry.
We propose a quantum annealing for the XXZ model, which contains both Ising interaction and energy-exchange interaction.
We show that we can prepare ground states of the two-dimensional Heisenberg model with a high fidelity.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Preparing ground states of Hamiltonians is important in the condensed matter
physics and the quantum chemistry. The interaction Hamiltonians typically
contain not only diagonal but also off-diagonal elements. Although quantum
annealing provides a way to prepare a ground state of a Hamiltonian, we can
only use the Hamiltonian with Ising interaction by using currently available
commercial quantum annealing devices. In this work, we propose a quantum
annealing for the XXZ model, which contains both Ising interaction and
energy-exchange interaction, by using inductively coupled superconducting flux
qubits. The key idea is to use a recently proposed spin-lock quantum annealing
where the qubits are driven by microwave fields. As long as the rotating wave
approximation is valid, the inductive coupling between the superconducting flux
qubits produces the desired Hamiltonian in the rotating frame, and we can use
such an interaction for the quantum annealing while the microwave fields
driving play a role of the transverse fields. To quantify the performance of
our scheme, we implement numerical simulations, and show that we can prepare
ground states of the two-dimensional Heisenberg model with a high fidelity.
Related papers
- Hamiltonian Engineering of collective XYZ spin models in an optical cavity [0.0]
Quantum simulation using synthetic quantum systems offers unique opportunities to explore open questions in many-body physics.
Here, we are able to realize an all-to-all interaction with arbitrary quadratic Hamiltonian or effectively an infinite range tunable Heisenberg XYZ model.
The versatility of our platform to include more than two relevant momentum states, combined with the flexibility of the simulated Hamiltonians by adding cavity tones opens rich opportunities for quantum simulation and quantum sensing in matter-wave interferometers and other quantum sensors such as optical clocks and magnetometers.
arXiv Detail & Related papers (2024-02-29T18:26:13Z) - Generalized transmon Hamiltonian for Andreev spin qubits [0.0]
We solve the problem of an interacting quantum dot embedded in a Josephson junction between two superconductors with finite charging energy.
The approach is based on the flat-band approximation of the Richardson model, which reduces the Hilbert space to the point where exact diagonalisation is possible.
arXiv Detail & Related papers (2024-02-03T10:58:08Z) - Bound state of distant photons in waveguide quantum electrodynamics [137.6408511310322]
Quantum correlations between distant particles remain enigmatic since the birth of quantum mechanics.
We predict a novel kind of bound quantum state in the simplest one-dimensional setup of two interacting particles in a box.
Such states could be realized in the waveguide quantum electrodynamics platform.
arXiv Detail & Related papers (2023-03-17T09:27:02Z) - 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) - Evolution of a Non-Hermitian Quantum Single-Molecule Junction at
Constant Temperature [62.997667081978825]
We present a theory for describing non-Hermitian quantum systems embedded in constant-temperature environments.
We find that the combined action of probability losses and thermal fluctuations assists quantum transport through the molecular junction.
arXiv Detail & Related papers (2021-01-21T14:33:34Z) - Quantum chaos driven by long-range waveguide-mediated interactions [125.99533416395765]
We study theoretically quantum states of a pair of photons interacting with a finite periodic array of two-level atoms in a waveguide.
Our calculation reveals two-polariton eigenstates that have a highly irregular wave-function in real space.
arXiv Detail & Related papers (2020-11-24T07:06:36Z) - Proposal for a nanomechanical qubit [0.0]
A mechanical quantum bit could provide an important new platform for quantum computation and sensing.
We show that by coupling one of the flexural modes of a suspended carbon nanotube to the charge states of a double quantum dot defined in the nanotube, it is possible to induce sufficient anharmonicity.
Remarkably, the dephasing due to the quantum dot is expected to be reduced by several orders of magnitude in the coupled system.
arXiv Detail & Related papers (2020-08-24T15:54:23Z) - 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) - 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) - Preparation of a superposition of squeezed coherent states of a cavity
field via coupling to a superconducting charge qubit [0.0]
We will discuss the issue of the generation of nonclassical states in the context of a superconducting qubit in a microcavity.
The key ingredients to engineer these quantum states are a tunable gate voltage and a classical magnetic field applied to SQUID.
arXiv Detail & Related papers (2020-03-20T18:06:47Z)
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.