Improved Efficiency of Open Quantum System Simulations Using Matrix
Products States in the Interaction Picture
- URL: http://arxiv.org/abs/2111.14308v1
- Date: Mon, 29 Nov 2021 02:42:28 GMT
- Title: Improved Efficiency of Open Quantum System Simulations Using Matrix
Products States in the Interaction Picture
- Authors: Kai T. Liu, David N. Beratan, Peng Zhang
- Abstract summary: Theory of open quantum systems is of value in condensed matter theory, cavity quantum electrodynamics, nanosciences and biophysics.
The computational cost of simulating open quantum systems remains high when the bath is excited to high-lying quantum states.
We develop an approach to reduce the computational costs in such cases.
- Score: 3.7530059578901147
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Modeling open quantum systems -- quantum systems coupled to a bath -- is of
value in condensed matter theory, cavity quantum electrodynamics, nanosciences
and biophysics. The real-time simulation of open quantum systems was advanced
significantly by the recent development of chain mapping techniques and the use
of matrix product states that exploit the intrinsic entanglement structure in
open quantum systems. The computational cost of simulating open quantum
systems, however, remains high when the bath is excited to high-lying quantum
states. We develop an approach to reduce the computational costs in such cases.
The interaction representation for the open quantum system is used to
distribute excitations among the bath degrees of freedom so that the occupation
of each bath oscillator is ensured to be low. The interaction picture also
causes the matrix dimensions to be much smaller in a matrix product state of a
chain-mapped open quantum system than in the Schr\"odinger picture. Using the
interaction representation accelerates the calculations by 1-2 orders of
magnitude over existing matrix-product-state method. In the regime of strong
system-bath coupling and high temperatures, the speedup can be as large as 3
orders of magnitude. The approach developed here is especially promising to
simulate the dynamics of open quantum systems in the high-temperature and
strong-coupling regimes.
Related papers
- Simulation of open quantum systems on universal quantum computers [15.876768787615179]
We present an innovative and scalable method to simulate open quantum systems using quantum computers.
We define an adjoint density matrix as a counterpart of the true density matrix, which reduces to a mixed-unitary quantum channel.
accurate long-time simulation can also be achieved as the adjoint density matrix and the true dissipated one converges to the same state.
arXiv Detail & Related papers (2024-05-31T09:07:27Z) - Universality of critical dynamics with finite entanglement [68.8204255655161]
We study how low-energy dynamics of quantum systems near criticality are modified by finite entanglement.
Our result establishes the precise role played by entanglement in time-dependent critical phenomena.
arXiv Detail & Related papers (2023-01-23T19:23:54Z) - Efficient simulation of open quantum systems coupled to a reservoir
through multiple channels [4.106703080056981]
We use the chain mapping strategy in the interaction picture to study systems linearly coupled to a harmonic bath through multiple channels.
We simulate singlet fission using a generalized spin-boson Hamiltonian.
This approach generalizes the chain mapping scheme to the case of multi-channel system-bath couplings.
arXiv Detail & Related papers (2022-12-12T18:16:01Z) - Recompilation-enhanced simulation of electron-phonon dynamics on IBM
Quantum computers [62.997667081978825]
We consider the absolute resource cost for gate-based quantum simulation of small electron-phonon systems.
We perform experiments on IBM quantum hardware for both weak and strong electron-phonon coupling.
Despite significant device noise, through the use of approximate circuit recompilation we obtain electron-phonon dynamics on current quantum computers comparable to exact diagonalisation.
arXiv Detail & Related papers (2022-02-16T19:00:00Z) - Coherent quantum annealing in a programmable 2000-qubit Ising chain [1.2472275770062884]
We show coherent evolution through a quantum phase transition in the paradigmatic setting of the 1D transverse-field Ising chain.
Results are in quantitative agreement with analytical solutions to the closed-system quantum model.
These experiments demonstrate that large-scale quantum annealers can be operated coherently.
arXiv Detail & Related papers (2022-02-11T19:00:00Z) - Phase Transitions in the Classical Simulability of Open Quantum Systems [0.0]
We study the evolution of an open quantum system using a Langevin unravelling of the density matrix evolution over matrix product states.
As the strength of coupling to and temperature of the environment is increased, we find a transition where the entanglement of the individual trajectories saturates, permitting a classical simulation of the system for all times.
arXiv Detail & Related papers (2021-11-11T19:00:00Z) - Efficient criteria of quantumness for a large system of qubits [58.720142291102135]
We discuss the dimensionless combinations of basic parameters of large, partially quantum coherent systems.
Based on analytical and numerical calculations, we suggest one such number for a system of qubits undergoing adiabatic evolution.
arXiv Detail & Related papers (2021-08-30T23:50:05Z) - Efficient Quantum Simulation of Open Quantum System Dynamics on Noisy
Quantum Computers [0.0]
We show that quantum dissipative dynamics can be simulated efficiently across coherent-to-incoherent regimes.
This work provides a new direction for quantum advantage in the NISQ era.
arXiv Detail & Related papers (2021-06-24T10:37:37Z) - Imaginary Time Propagation on a Quantum Chip [50.591267188664666]
Evolution in imaginary time is a prominent technique for finding the ground state of quantum many-body systems.
We propose an algorithm to implement imaginary time propagation on a quantum computer.
arXiv Detail & Related papers (2021-02-24T12:48:00Z) - Information Scrambling in Computationally Complex Quantum Circuits [56.22772134614514]
We experimentally investigate the dynamics of quantum scrambling on a 53-qubit quantum processor.
We show that while operator spreading is captured by an efficient classical model, operator entanglement requires exponentially scaled computational resources to simulate.
arXiv Detail & Related papers (2021-01-21T22:18:49Z) - Quantum Non-equilibrium Many-Body Spin-Photon Systems [91.3755431537592]
dissertation concerns the quantum dynamics of strongly-correlated quantum systems in out-of-equilibrium states.
Our main results can be summarized in three parts: Signature of Critical Dynamics, Driven Dicke Model as a Test-bed of Ultra-Strong Coupling, and Beyond the Kibble-Zurek Mechanism.
arXiv Detail & Related papers (2020-07-23T19:05:56Z)
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.