Robustness of tripartite entangled states in passive ${\cal P}{\cal T}$-symmetric qubits
- URL: http://arxiv.org/abs/2411.17457v1
- Date: Tue, 26 Nov 2024 14:22:44 GMT
- Title: Robustness of tripartite entangled states in passive ${\cal P}{\cal T}$-symmetric qubits
- Authors: C. G. Feyisa, Cheng-Yu Liu, Muhammad S. Hasan, J. S. You, Huan-Yu Ku, H. H. Jen,
- Abstract summary: We study the robustness of tripartite entanglement induced by exceptional points (EPs) in non-Hermitian qubits.
Our results reveal that non-Hermitian qubits with all-to-all coupling generate GHZ states, while those with nearest-neighbour interactions produce W states.
- Score: 1.138330441337675
- License:
- Abstract: Non-Hermitian quantum systems have attracted significant interest in recent years due to the presence of unique spectral singularities known as exceptional points (EPs), where eigenvalues and eigenvectors coalesce. The drastic changes in these systems around their EPs have led to unique entanglement dynamics, which remained elusive until quite recently. In this work, we theoretically investigate the robustness of tripartite entanglement induced by EPs of the passive $\mathcal{PT}$-symmetric non-Hermitian superconducting qubits, both in stand-alone configurations and hybrid setups with Hermitian qubits. In particular, we consider the qubits with both all-to-all and nearest-neighbour couplings under uniform and non-uniform coupling strengths. Our results reveal that non-Hermitian qubits with all-to-all coupling generate GHZ states, while those with nearest-neighbour interactions produce W states. These entangled states are resilient to non-uniform couplings and off-resonant driving fields. Moreover, the hybrid configurations combining Hermitian and non-Hermitian qubits suggest the importance of EPs for generating and maintaining genuine tripartite entanglement in our system. Additionally, driving the $\mathcal{PT}$-symmetric qubits with a strong Rabi frequency can help sustain tripartite entanglement over time by countering losses, while strong inter-qubit coupling can benefit these entangled states in the low dissipation regime. These findings suggest that exploiting non-Hermitian systems and their associated EPs can create robust entangled states which are useful for both fundamental studies and quantum technologies.
Related papers
- Accelerating multipartite entanglement generation in non-Hermitian superconducting qubits [0.0]
We propose a fast generation of multipartite entanglement in non-Hermitian qubits.
We show that Hermitian qubits can generate GHZ states with a high fidelity more than $0.9995$ in a timescale comparable to that of non-Hermitian qubits.
arXiv Detail & Related papers (2024-09-05T11:03:16Z) - Frequency-resolved Purcell effect for the dissipative generation of
steady-state entanglement [49.1574468325115]
We report a driven-dissipative mechanism to generate stationary entangled $W$ states among strongly-interacting quantum emitters placed within a cavity.
The non-harmonic energy structure of the interacting ensemble allows this transition to be resonantly selected by the cavity.
Evidence of this purely dissipative mechanism should be observable in state-of-the-art cavity QED systems in the solid-state.
arXiv Detail & Related papers (2023-12-19T18:04:22Z) - Neural-network quantum states for ultra-cold Fermi gases [49.725105678823915]
This work introduces a novel Pfaffian-Jastrow neural-network quantum state that includes backflow transformation based on message-passing architecture.
We observe the emergence of strong pairing correlations through the opposite-spin pair distribution functions.
Our findings suggest that neural-network quantum states provide a promising strategy for studying ultra-cold Fermi gases.
arXiv Detail & Related papers (2023-05-15T17:46:09Z) - Dissipative preparation and stabilization of many-body quantum states in
a superconducting qutrit array [55.41644538483948]
We present and analyze a protocol for driven-dissipatively preparing and stabilizing a manifold of quantum manybody entangled states.
We perform theoretical modeling of this platform via pulse-level simulations based on physical features of real devices.
Our work shows the capacity of driven-dissipative superconducting cQED systems to host robust and self-corrected quantum manybody states.
arXiv Detail & Related papers (2023-03-21T18:02:47Z) - Spin Josephson effects of spin-orbit-coupled Bose-Einstein condensates
in a non-Hermitian double well [7.386723982670554]
We investigate the spin and tunneling dynamics of a Bose-Einstein condensate in a periodically driven non-Hermitian double-well potential.
The results deepen the understanding of non-Hermitian physics and could be useful for engineering a variety of devices for spintronics.
arXiv Detail & Related papers (2022-08-28T10:50:46Z) - Noise-resilient Edge Modes on a Chain of Superconducting Qubits [103.93329374521808]
Inherent symmetry of a quantum system may protect its otherwise fragile states.
We implement the one-dimensional kicked Ising model which exhibits non-local Majorana edge modes (MEMs) with $mathbbZ$ parity symmetry.
MEMs are found to be resilient against certain symmetry-breaking noise owing to a prethermalization mechanism.
arXiv Detail & Related papers (2022-04-24T22:34:15Z) - Quantum scars and bulk coherence in a symmetry-protected topological
phase [0.0]
We show the existence of many-body scars and their implications on bulk coherence in certain protected topological (SPT) phases.
We show that eigenstates with volume-law entanglement coexist with area-law entangled eigenstates throughout the spectrum.
Our work sheds light on the role of quantum many-body scars in preserving SPT order at finite temperature and the possibility of coherent bulk dynamics in models with SPT order beyond the existence of long-lived edge modes.
arXiv Detail & Related papers (2021-03-29T18:35:35Z) - Signatures of Liouvillian exceptional points in a quantum thermal
machine [20.83362404425491]
We characterize a quantum thermal machine as a non-Hermitian quantum system.
We show that the thermal machine features a number of Liouvillian exceptional points (EPs) for experimentally realistic parameters.
arXiv Detail & Related papers (2021-01-27T17:19:35Z) - Unconventional Singularity in Anti-Parity-Time Symmetric Cavity
Magnonics [0.2638512174804417]
We observe two different singularities in the same system.
We find that both singularities co-exist at the equator of the Bloch sphere.
arXiv Detail & Related papers (2020-09-08T19:02:46Z) - Exponentially-enhanced quantum sensing with non-Hermitian lattice
dynamics [77.34726150561087]
We show that certain asymmetric non-Hermitian tight-binding models with a $mathbbZ$ symmetry yield a pronounced sensing advantage.
Our setup is directly compatible with a variety of quantum optical and superconducting circuit platforms.
arXiv Detail & Related papers (2020-04-01T17:14:14Z)
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.