Almost perfect transmission of multipartite entanglement through
disordered and noisy spin chains
- URL: http://arxiv.org/abs/2005.06930v1
- Date: Thu, 14 May 2020 12:59:38 GMT
- Title: Almost perfect transmission of multipartite entanglement through
disordered and noisy spin chains
- Authors: Rafael Vieira and Gustavo Rigolin
- Abstract summary: We show how an entangled M-partite W sate can be almost flawlessly transmitted from one end (Alice) to the other end (Bob) of a spin-1/2 chain described by a slightly modified XX model.
We achieve an almost perfect transmission without employing external magnetic fields or modulating the coupling constants among the spins of the chain.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We show how to efficiently send an M-partite entangled state along a spin
chain of arbitrary size. Specifically, we show how an entangled M-partite W
sate can be almost flawlessly transmitted from one end (Alice) to the other end
(Bob) of a spin-1/2 chain described by a slightly modified XX model. We achieve
an almost perfect transmission without employing external magnetic fields or
modulating the coupling constants among the spins of the chain, the two
standard approaches used to achieve a good transmission efficiency. Moreover,
the protocol here proposed can be used to transform an M-partite W state with
Alice into an M'-partite one with Bob (M different from M'). We also
investigate the proposed protocol's response to several types of disorder and
noise and show that it is quite robust to small deviations about the coupling
constants of the optimal ordered and noiseless case.
Related papers
- Realization of two-qubit gates and multi-body entanglement states in an asymmetric superconducting circuits [3.9488862168263412]
We propose a tunable fluxonium-transmon-transmon (FTT) cou pling scheme.
The asymmetric structure composed of fluxonium and transmon will optimize the frequency space and form a high fidelity two-qubit quantum gate.
We study the performance of this scheme by simulating the general single-qubit Xpi/2 gate and two-qubit (iSWAP) gate.
arXiv Detail & Related papers (2024-04-12T08:44:21Z) - Theory of free fermions dynamics under partial post-selected monitoring [49.1574468325115]
We derive a partial post-selected Schrdinger"o equation based on a microscopic description of continuous weak measurement.
We show that the passage to the monitored universality occurs abruptly at finite partial post-selection.
Our approach establishes a way to study MiPTs for arbitrary subsets of quantum trajectories.
arXiv Detail & Related papers (2023-12-21T16:53:42Z) - Exact solution of a family of staggered Heisenberg chains with
conclusive pretty good quantum state transfer [68.8204255655161]
We work out the exact solutions in the one-excitation subspace.
We present numerical evidence that pretty good transmission is achieved by chains whose length is not a power of two.
arXiv Detail & Related papers (2022-06-28T18:31:09Z) - 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) - Optimal supplier of single-error-type entanglement via coherent-state
transmission [1.2891210250935146]
We consider protocol that presents single-error-type entanglement for distant qubits via coherent-state transmission over a lossy channel.
This protocol is regarded as a subroutine to serve entanglement for larger protocol to yield a final output, such as ebits or pbits.
arXiv Detail & Related papers (2022-03-31T15:36:54Z) - Five-second coherence of a single spin with single-shot readout in
silicon carbide [84.97423065534817]
We demonstrate single-shot readout of single defects in silicon carbide (SiC)
We achieve over 80% readout fidelity without pre- or post-selection.
We report single spin T2 > 5s, over two orders of magnitude greater than previously reported in this system.
arXiv Detail & Related papers (2021-10-04T17:35:02Z) - Pretty good quantum state transfer on isotropic and anisotropic
Heisenberg spin chains with tailored site dependent exchange couplings [68.8204255655161]
We consider chains with isotropic and anisotropic Heisenberg Hamiltonian with up to 100 spins.
We consider short transferred times, in particular shorter than those achievable with known time-dependent control schemes.
arXiv Detail & Related papers (2021-01-08T19:32:10Z) - Controlled quantum state transfer in $XX$ spin chains at the Quantum
Speed Limit [62.997667081978825]
In homogeneous chains it implies that taking information from one extreme of the chain to the other will take a time $O(N/2)$, where $N$ is the chain length.
We design control pulses that achieve near perfect population transfer between the extremes of the chain at times on the order of $N/2$, or larger.
arXiv Detail & Related papers (2020-05-15T23:10:19Z) - Almost exact state transfer in a spin chain via pulse control [0.0]
We propose an effective quantum control technique to realize almost exact state transfer (AEST) in a quantum spin chain.
The strategy is to add a leakage elimination operator (LEO) Hamiltonian to the evolution, which implements a sequence of pulse control acting on a perfect state transfer subspace.
arXiv Detail & Related papers (2020-05-04T08:12:47Z) - Multipartite entanglement transfer in spin chains [0.0]
We investigate the transfer of genuine multipartite entanglement across a spin-1/2 chain with nearest-neighbor XX-type interaction.
We find that high-quality multipartite entanglement transfer is achieved at the same time that three excitations are transferred to the opposite edge of the chain.
arXiv Detail & Related papers (2020-01-10T16:01:56Z)
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.