Motional $N$-phonon Bundle States of A Trapped Atom with Clock
Transitions
- URL: http://arxiv.org/abs/2011.03886v2
- Date: Fri, 30 Jul 2021 15:31:22 GMT
- Title: Motional $N$-phonon Bundle States of A Trapped Atom with Clock
Transitions
- Authors: Yuangang Deng, Tao Shi, and Su Yi
- Abstract summary: Quantum manipulation of individual phonons could offer new resources for studying fundamental physics.
We propose to generate quantum states of strongly correlated phonon bundles associated with the motion of a trapped atom.
- Score: 0.6882042556551611
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Quantum manipulation of individual phonons could offer new resources for
studying fundamental physics and creating an innovative platform in quantum
information science. Here, we propose to generate quantum states of strongly
correlated phonon bundles associated with the motion of a trapped atom. Our
scheme operates in the atom-phonon resonance regime where the energy spectrum
exhibits strong anharmonicity such that energy eigenstates with different
phonon numbers can be well-resolved in the parameter space. Compared to earlier
schemes operating in the far dispersive regime, the bundle states generated
here contain a large steady-state phonon number. Therefore, the proposed system
can be used as a high quality multiphonon source. Our results open up the
possibility of using long-lived motional phonons as quantum resources, which
could provide a broad physics community for applications in quantum metrology.
Related papers
- Imaginary Time Spectral Transforms for Excited State Preparation [0.0]
We introduce a general approach that allows us to obtain arbitrary eigenstates of quantum systems at a given energy.<n>We are able to avoid explicit inversion of the Hamiltonian and construct excited eigenstates of large many-body quantum systems.
arXiv Detail & Related papers (2025-07-31T18:00:07Z) - High-fidelity collisional quantum gates with fermionic atoms [0.9185835982622453]
Fermionic quantum computers offer prospect of directly implementing electronic structure problems.<n>We demonstrate collisional entangling gates with fidelities up to 99.75(6)% and lifetimes of Bell states beyond $10,s$ via the control of fermionic atoms in an optical superlattice.
arXiv Detail & Related papers (2025-06-17T16:50:08Z) - Quantum simulations of nuclear resonances with variational methods [1.740992908651449]
This work aims to simulate nuclear resonances using quantum algorithms by developing a variational framework compatible with non-Hermitian Hamiltonians.
We employ the complex scaling technique to extract resonance positions classically and adapt it for quantum simulations using a two-step algorithm.
The results establish a scalable and efficient quantum framework for simulating resonance phenomena in nuclear systems.
arXiv Detail & Related papers (2025-04-16T01:01:56Z) - The multimode conditional quantum Entropy Power Inequality and the squashed entanglement of the extreme multimode bosonic Gaussian channels [53.253900735220796]
Inequality determines the minimum conditional von Neumann entropy of the output of the most general linear mixing of bosonic quantum modes.
Bosonic quantum systems constitute the mathematical model for the electromagnetic radiation in the quantum regime.
arXiv Detail & Related papers (2024-10-18T13:59:50Z) - Multi-phonon Fock state heralding with single-photon detection [0.0]
We show how single-photon detection can herald selected multi-phonon Fock states, even in the presence of optical losses.
We also present an approach for quantum tomography of the heralded phonon states.
arXiv Detail & Related papers (2024-07-26T22:51:53Z) - Realizing fracton order from long-range quantum entanglement in programmable Rydberg atom arrays [45.19832622389592]
Storing quantum information requires battling quantum decoherence, which results in a loss of information over time.
To achieve error-resistant quantum memory, one would like to store the information in a quantum superposition of degenerate states engineered in such a way that local sources of noise cannot change one state into another.
We show that this platform also allows to detect and correct certain types of errors en route to the goal of true error-resistant quantum memory.
arXiv Detail & Related papers (2024-07-08T12:46:08Z) - Generation of Large Amplitude Phonon States in Quantum Acoustics [0.0]
This work provides a key tool for generating arbitrary phonon states in circuit quantum acoustodynamics.<n>It is important for fundamental and quantum information applications.
arXiv Detail & Related papers (2023-12-21T15:37:55Z) - Quantum data learning for quantum simulations in high-energy physics [55.41644538483948]
We explore the applicability of quantum-data learning to practical problems in high-energy physics.
We make use of ansatz based on quantum convolutional neural networks and numerically show that it is capable of recognizing quantum phases of ground states.
The observation of non-trivial learning properties demonstrated in these benchmarks will motivate further exploration of the quantum-data learning architecture in high-energy physics.
arXiv Detail & Related papers (2023-06-29T18:00:01Z) - 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) - Probing resonating valence bonds on a programmable germanium quantum
simulator [0.0]
We introduce quantum simulation using hole spins in germanium quantum dots.
We demonstrate extensive and coherent control enabling the tuning of multi-spin states in isolated, paired, and fully coupled quantum dots.
arXiv Detail & Related papers (2022-08-24T12:55:51Z) - 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) - Dark Exciton Giant Rabi Oscillations with no External Magnetic Field [0.0]
We study a system consisting of a semiconductor quantum dot pumped by a driving laser, and coupled to an acoustic cavity.
This kind of systems has proven to yield interesting multi-phonon phenomena, but the description of the quantum dot has been limited to a two-level system.
We highlight two outstanding features: first, we are able to create dark states excitations in the quantum dot without the usual external magnetic field needed to do so.
arXiv Detail & Related papers (2021-12-07T13:27:18Z) - Parity measurement in the strong dispersive regime of circuit quantum
acoustodynamics [1.7673364730995766]
We show direct measurements of the phonon number distribution and parity of nonclassical mechanical states.
These measurements are some of the basic building blocks for constructing acoustic quantum memories and processors.
Our results open the door to performing even more complex quantum algorithms using mechanical systems.
arXiv Detail & Related papers (2021-10-01T08:40:26Z) - Emergent quantum state designs from individual many-body wavefunctions [3.9606043744835375]
We show that a single non-random quantum state is shown to encode universal and highly random quantum state ensembles.
Our results offer a new approach for studying quantum chaos and provide a practical method for sampling approximately uniformly random states.
arXiv Detail & Related papers (2021-03-05T08:32:47Z) - Preparing random states and benchmarking with many-body quantum chaos [48.044162981804526]
We show how to predict and experimentally observe the emergence of random state ensembles naturally under time-independent Hamiltonian dynamics.
The observed random ensembles emerge from projective measurements and are intimately linked to universal correlations built up between subsystems of a larger quantum system.
Our work has implications for understanding randomness in quantum dynamics, and enables applications of this concept in a wider context.
arXiv Detail & Related papers (2021-03-05T08:32:43Z)
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.