Quantum State Evolution and Berry Potentials at Exceptional Points and Quantum Phase Transitions
- URL: http://arxiv.org/abs/2403.16503v4
- Date: Tue, 20 May 2025 13:28:25 GMT
- Title: Quantum State Evolution and Berry Potentials at Exceptional Points and Quantum Phase Transitions
- Authors: Chia-Yi Ju, Fu-Hsiang Huang,
- Abstract summary: We show that information carried by quantum states evolving across critical points is not destroyed.<n>In physical terms, it's similar to the classical image of an object smoothly passing through a black hole's event horizon.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The behavior of quantum states at exceptional points and at critical points associated with quantum phase transitions is intriguing yet puzzling. In this study, we present an alternative method for obtaining the Berry potentials using the evolution generator along the parameter induced dimension and demonstrate that they are singular at these critical points. Although these singularities may appear to indicate a breakdown in quantum state evolution, we show that the information carried by quantum states evolving across these critical points is not destroyed. Specifically, when the evolution generator of the full Hilbert space bundle is taken into account, the quantum states remain insensitive to the critical points. In physical terms, it's similar to the classical image of an object smoothly passing through a black hole's event horizon. Further similarities between exceptional points and quantum phase transitions are explored in this work.
Related papers
- Horizon quantum geometries and decoherence [49.1574468325115]
There is mounting theoretical evidence that black hole horizons induce decoherence on a quantum system.<n>This phenomenon has been shown to owe its existence to soft modes.<n>We show that the discreteness of the energy levels associated to the different geometric configurations might have strong impact on the results.
arXiv Detail & Related papers (2025-07-24T18:00:30Z) - Quantum simulation of bubble nucleation across a quantum phase transition [31.874825130479174]
We use a trapped-ion quantum simulator to observe the real-time dynamics of bubble nucleation'' induced by quantum fluctuations.<n>Results demonstrate the power of quantum simulators to probe out-of-equilibrium many-body physics.
arXiv Detail & Related papers (2025-05-14T17:57:25Z) - Phase transitions, symmetries, and tunneling in Kerr parametric oscillators [37.69303106863453]
We study the onset of ground-state and excited-state quantum phase transitions in KPOs.
We identify the critical points associated with quantum phase transitions and analyze their influence on the energy spectrum and tunneling dynamics.
Our findings provide insights into the engineering of robust quantum states, quantum dynamics control, and onset of quantum phase transitions with implications for critical quantum sensing.
arXiv Detail & Related papers (2025-04-21T18:00:19Z) - Genuine Continuous Quantumness [0.5277756703318045]
We introduce nonlinear squeezing as a general framework to describe and verify genuine quantumness in noise of continuous quantum states.
We certify the non-Gaussianity of experimentally prepared multi-photon-added coherent states of light for the first time.
This framework advances quantum science and supports the development of quantum technologies.
arXiv Detail & Related papers (2025-03-10T17:41:35Z) - Fidelity preserving and decoherence for mixed unitary quantum channels [3.0899016152680754]
Distinguishable and non-distinguishable quantum states are fundamental resources in quantum mechanics and quantum technologies.
In this paper, we investigate mixed unitary quantum channels and the conditions under which fidelity, a measure of quantum state closeness, is preserved.
arXiv Detail & Related papers (2024-10-26T08:08:21Z) - Observation of quantum superposition of topological defects in a trapped ion quantum simulator [10.307677845109378]
We report the observation of quantum superposition of topological defects in a trapped-ion quantum simulator.
Our work provides useful tools for non-equilibrium dynamics in quantum Kibble-Zurek physics.
arXiv Detail & Related papers (2024-10-20T13:27:13Z) - Crossing exceptional points in non-Hermitian quantum systems [41.94295877935867]
We reveal the behavior of two-photon quantum states in non-Hermitian systems across the exceptional point.
We demonstrate a switching in the quantum interference of photons directly at the exceptional point.
arXiv Detail & Related papers (2024-07-17T14:04:00Z) - A Method Using Photon Collapse and Entanglement to Transmit Information [13.438312709072457]
We find that measurements cause quantum wave functions to collapse.
By studying the overlooked phenomena of quantum wave function collapse, we find that quantum eigenstate sets may be artificially controlled.
We propose an innovative method for direct information transmission utilizing photon wave function collapse and entanglement.
arXiv Detail & Related papers (2024-06-27T13:22:21Z) - Protocols to measure the non-Abelian Berry phase by pumping a spin qubit through a quantum-dot loop [0.0]
We analyze protocols to measure the non-Abelian Berry phase by pumping a spin qubit through a loop of quantum dots.<n>These experiments would be important to assess the potential of holonomic quantum gates for spin-based quantum information processing.
arXiv Detail & Related papers (2023-08-10T09:26:25Z) - 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) - A vertical gate-defined double quantum dot in a strained germanium
double quantum well [48.7576911714538]
Gate-defined quantum dots in silicon-germanium heterostructures have become a compelling platform for quantum computation and simulation.
We demonstrate the operation of a gate-defined vertical double quantum dot in a strained germanium double quantum well.
We discuss challenges and opportunities and outline potential applications in quantum computing and quantum simulation.
arXiv Detail & Related papers (2023-05-23T13:42:36Z) - Quantifying measurement-induced quantum-to-classical crossover using an
open-system entanglement measure [49.1574468325115]
We study the entanglement of a single particle under continuous measurements.
We find that the entanglement at intermediate time scales shows the same qualitative behavior as a function of the measurement strength.
arXiv Detail & Related papers (2023-04-06T09:45:11Z) - Zero Curvature Condition for Quantum Criticality [1.261852738790008]
We present a new paradigm of quantum criticality based on a novel geometric approach.
We demonstrate that the quantum phase transition occurs precisely at the zero-curvature point on this boundary.
arXiv Detail & Related papers (2023-03-16T18:35:19Z) - The singularities of the rate function of quantum coherent work in
one-dimensional transverse field Ising model [0.0]
We specialize our discussions to the one-dimensional transverse field quantum Ising model in the coherent Gibbs state.
We find that quantum coherence not only recovers the quantum phase transition destroyed by thermal fluctuations.
It can be manifested that these singularities are rooted in spin flips causing the sudden change of the domain boundaries of spin polarization.
arXiv Detail & Related papers (2023-03-15T03:17:23Z) - 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) - Completing the quantum ontology with the electromagnetic zero-point
field [0.0]
This text begins with a series of critical considerations on the initial interpretation of quantum phenomena observed in atomic systems.
Arguments are given in favour of the random zero-point radiation field (ZPF) as the element needed to complete the quantum process.
The permanent presence of the field drastically affects the dynamics of the particle, which eventually falls under the control of the field.
arXiv Detail & Related papers (2022-07-13T23:11:48Z) - Probing Topological Spin Liquids on a Programmable Quantum Simulator [40.96261204117952]
We use a 219-atom programmable quantum simulator to probe quantum spin liquid states.
In our approach, arrays of atoms are placed on the links of a kagome lattice and evolution under Rydberg blockade creates frustrated quantum states.
The onset of a quantum spin liquid phase of the paradigmatic toric code type is detected by evaluating topological string operators.
arXiv Detail & Related papers (2021-04-09T00:18:12Z) - Observation of many-body quantum phase transitions beyond the
Kibble-Zurek mechanism [4.911749334377798]
We improve the band-mapping method to investigate the quantum phase transition from superfluid to Mott insulators.
We observe the critical behaviors of quantum phase transitions in both dynamical steady-state-relaxation region and phase-oscillation region.
arXiv Detail & Related papers (2020-12-03T07:21:57Z) - Unraveling the topology of dissipative quantum systems [58.720142291102135]
We discuss topology in dissipative quantum systems from the perspective of quantum trajectories.
We show for a broad family of translation-invariant collapse models that the set of dark state-inducing Hamiltonians imposes a nontrivial topological structure on the space of Hamiltonians.
arXiv Detail & Related papers (2020-07-12T11:26:02Z) - Jumptime unraveling of Markovian open quantum systems [68.8204255655161]
We introduce jumptime unraveling as a distinct description of open quantum systems.
quantum jump trajectories emerge, physically, from continuous quantum measurements.
We demonstrate that quantum trajectories can also be ensemble-averaged at specific jump counts.
arXiv Detail & Related papers (2020-01-24T09:35:32Z)
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.