From quantum to classical via crystallization
- URL: http://arxiv.org/abs/2312.12884v1
- Date: Wed, 20 Dec 2023 09:49:36 GMT
- Title: From quantum to classical via crystallization
- Authors: Ioannis Kleftogiannis, Ilias Amanatidis
- Abstract summary: We show that classical states can emerge as pure ground state solutions of a quantum many-body system.
Our result is an example of how a quantum system can converge to a classical state, like a crystal, without requiring decoherence.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We show that classical states can emerge as pure ground state solutions of a
quantum many-body system. We use a simple Hubbard model in 1D with strong
short-range interactions and a second nearest neighbor hopping with N particles
arranged among M sites. We show that the ground state of this Hubbard chain for
M=2N-1 consists of a single many-body state where the strongly interacting
particles arrange in a classical state with crystalline order. The ground state
is separated by an energy gap from the first excited state, and survives in the
thermodynamic limit for large N. The energy gap increases linearly with the
strength of the interaction between the particles making the classical ground
state robust to external perturbations like disorder. Our result is an example
of how a quantum system can converge to a classical state, like a crystal,
without requiring decoherence, wavefunction collapse or other external
mechanisms.
Related papers
- 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) - Schr\"odinger cat states of a 16-microgram mechanical oscillator [54.35850218188371]
The superposition principle is one of the most fundamental principles of quantum mechanics.
Here we demonstrate the preparation of a mechanical resonator with an effective mass of 16.2 micrograms in Schr"odinger cat states of motion.
We show control over the size and phase of the superposition and investigate the decoherence dynamics of these states.
arXiv Detail & Related papers (2022-11-01T13:29:44Z) - Realization of a fractional quantum Hall state with ultracold atoms [0.0]
Emblematic instances are fractional quantum Hall states, where the interplay of magnetic fields and strong interactions gives rise to fractionally charged quasi-particles.
Here, we realize a fractional quantum Hall (FQH) state with ultracold atoms in an optical lattice.
arXiv Detail & Related papers (2022-10-19T22:48:43Z) - Formation of robust bound states of interacting microwave photons [148.37607455646454]
One of the hallmarks of interacting systems is the formation of multi-particle bound states.
We develop a high fidelity parameterizable fSim gate that implements the periodic quantum circuit of the spin-1/2 XXZ model.
By placing microwave photons in adjacent qubit sites, we study the propagation of these excitations and observe their bound nature for up to 5 photons.
arXiv Detail & Related papers (2022-06-10T17:52:29Z) - Scattering in Terms of Bohmian Conditional Wave Functions for Scenarios
with Non-Commuting Energy and Momentum Operators [0.0]
We show that Bohmian conditional wave functions (BCWF) allow a rigorous discussion of the dynamics of electrons inside open quantum systems.
We discuss the practical application of the method for modeling light-matter interaction phenomena in a resonant tunneling device.
arXiv Detail & Related papers (2022-02-03T13:07:43Z) - Entanglement Protection of Classically Driven Qubits in a Lossy Cavity [0.0]
entanglement is one of the basic resources for the novel quantum revolution.
We investigate the effect of the classical driving field on the generation of entanglement between two qubits interacting with a bosonic environment.
We show that, overall, the classical driving field has a constructive role for the entanglement protection in the strong coupling regime.
arXiv Detail & Related papers (2021-07-31T07:40:59Z) - Non-trivial dynamic regimes of small (nano-scale) quantum systems [0.0]
We show that system behavior becomes non-trivial and manifests a sort of transitions between regular and chaotic dynamics.
We generalize the model to include into consideration the coupling of the initially prepared single state to system phonon excitations.
We anticipate that the basic ideas inspiring our work can be applied to a large variety of interesting for the applications nano-systems.
arXiv Detail & Related papers (2021-05-24T11:19:19Z) - Mesoscopic quantum superposition states of weakly-coupled matter-wave
solitons [58.720142291102135]
We establish quantum features of an atomic soliton Josephson junction (SJJ) device.
We show that the SJJ-model in quantum domain exhibits unusual features due to its effective nonlinear strength proportional to the square of total particle number.
We have shown that the obtained quantum state is more resistant to few particle losses from the condensates if tiny components of entangled Fock states are present.
arXiv Detail & Related papers (2020-11-26T09:26:19Z) - Quantum Hall phase emerging in an array of atoms interacting with
photons [101.18253437732933]
Topological quantum phases underpin many concepts of modern physics.
Here, we reveal that the quantum Hall phase with topological edge states, spectral Landau levels and Hofstadter butterfly can emerge in a simple quantum system.
Such systems, arrays of two-level atoms (qubits) coupled to light being described by the classical Dicke model, have recently been realized in experiments with cold atoms and superconducting qubits.
arXiv Detail & Related papers (2020-03-18T14:56:39Z) - Einselection from incompatible decoherence channels [62.997667081978825]
We analyze an open quantum dynamics inspired by CQED experiments with two non-commuting Lindblad operators.
We show that Fock states remain the most robust states to decoherence up to a critical coupling.
arXiv Detail & Related papers (2020-01-29T14:15:19Z) - Universal Error Bound for Constrained Quantum Dynamics [0.0]
We establish an observable-based error bound for a constrained-dynamics approximation in generic gapped quantum systems.
Our work establishes a universal and rigorous result concerning nonequilibrium quantum dynamics.
arXiv Detail & Related papers (2020-01-03T06:25:03Z)
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.