Entanglement source and quantum memory analysis for zero added-loss multiplexing
- URL: http://arxiv.org/abs/2406.13572v2
- Date: Thu, 26 Sep 2024 20:11:08 GMT
- Title: Entanglement source and quantum memory analysis for zero added-loss multiplexing
- Authors: Jeffrey H. Shapiro, Michael G. Raymer, Clark Embleton, Franco N. C. Wong, Brian J. Smith,
- Abstract summary: ZALM proposed a means for dramatically increasing entanglement-distribution rates via zero added-loss multiplexing.
This paper delves deeply into ZALM's SPDCs, partial-BSMs, and loading of Alice and Bob's quantum memories.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: High-rate, high-fidelity entanglement distribution is essential to the creation of a quantum internet, but recent achievements in fiber and satellite-based entanglement distribution fall far short of what is needed. Chen et al. [Phys. Rev. Appl. 19, 054209 (2023)] proposed a means for dramatically increasing entanglement-distribution rates via zero added-loss multiplexing (ZALM). ZALM's quantum transmitter employs a pair of Sagnac-configured spontaneous parametric downconverters (SPDCs), channelization via dense wavelength-division multiplexing (DWDM) filtering, and partial Bell-state measurements (BSMs) to realize a heralded source of frequency-multiplexed polarization-entangled biphotons. Each biphoton is transmitted to Alice and Bob with a classical message identifying its frequency channel and the heralded entangled state. Their quantum receivers use DWDM filtering and mode conversion to interface their received biphotons to intra-cavity color-center quantum memories. This paper delves deeply into ZALM's SPDCs, partial-BSMs, and loading of Alice and Bob's quantum memories. It derives the density operators for the SPDC sources and the quantum memories, allowing heralding probability, heralding efficiency, and fidelity to be evaluated for both the polarization-entangled biphotons and the loaded quantum memories, thus enabling exploration of the parameter space for optimizing ZALM performance. Even without optimization analysis, the paper already demonstrates two critical features of the ZALM architecture: the necessity of achieving a near-separable channelized biphoton wave function to ensure the biphoton sent to Alice and Bob is of high purity; and the premium placed on Alice and Bob's temporal-mode converters' enabling narrowband push-pull memory loading to ensure the arriving biphoton's state is faithfully transferred to the intra-cavity color centers.
Related papers
- Deployed quantum link characterization via Bayesian ancilla-assisted process tomography [0.3125493023811141]
We leverage ancilla-assisted process tomography and Bayesian inference to probe a 1.6 km deployed fiber-optic link.
We send polarization-entangled photons from Alice in one building to Bob in another, exploiting the local qubit as an ancilla system to characterize the corresponding quantum channel.
Monitoring over a 24 h period returns a steady process fidelity of 95.1(1)%, while controllable spectral filtering with passbands from 0.025-4.38 THz finds fidelities that first increase, then level off with bandwidth.
arXiv Detail & Related papers (2024-10-01T17:31:18Z) - Hyper-entanglement between pulse modes and frequency bins [101.18253437732933]
Hyper-entanglement between two or more photonic degrees of freedom (DOF) can enhance and enable new quantum protocols.
We demonstrate the generation of photon pairs hyper-entangled between pulse modes and frequency bins.
arXiv Detail & Related papers (2023-04-24T15:43:08Z) - Simulation of Entanglement Generation between Absorptive Quantum
Memories [56.24769206561207]
We use the open-source Simulator of QUantum Network Communication (SeQUeNCe), developed by our team, to simulate entanglement generation between two atomic frequency comb (AFC) absorptive quantum memories.
We realize the representation of photonic quantum states within truncated Fock spaces in SeQUeNCe.
We observe varying fidelity with SPDC source mean photon number, and varying entanglement generation rate with both mean photon number and memory mode number.
arXiv Detail & Related papers (2022-12-17T05:51:17Z) - Telecom-band Hyperentangled Photon Pairs from a Fiber-based Source [49.06242674127539]
We experimentally demonstrate the generation of telecom-band biphotons hyperentangled in both the polarization and frequency DoFs.
The states produced by our hyperentanglement source can enable protocols such as dense coding and high-dimensional quantum key distribution.
arXiv Detail & Related papers (2021-12-06T21:37:43Z) - Single-shot readout of a solid-state spin in a decoherence-free subspace [0.0]
Single photon emission capabilities of quantum dot molecules position them as promising platforms for quantum information processing.
We propose and theoretically study a two-stage spin readout protocol within a decoherence-free subspace.
We show that an optimal spin readout fidelity of over 97% and single-shot readout performance are achievable for a photon collection efficiency of just 0.12%.
arXiv Detail & Related papers (2020-10-23T03:11:23Z) - Deterministically fabricated strain-tunable quantum dot single-photon
sources emitting in the telecom O-band [0.0]
We present a spectrally tunable single-photon source emitting in the telecom O-band with the potential to function as a building block of a quantum communication network.
A thin membrane of GaAs embedding InGaAs quantum dots (QDs) is attached onto a piezoelectric actuator via gold thermocompression bonding.
arXiv Detail & Related papers (2020-09-26T09:03:50Z) - Efficient Generation of Subnatural-Linewidth Biphotons by Controlled
Quantum Interference [0.9877468274612591]
Biphotons of narrow bandwidth and long temporal length play a crucial role in long-distance quantum communication.
By manipulating the two-component biphoton wavefunction, we demonstrate biphotons with subnatural linewidth in the sub-MHz regime.
Our work has potential applications in realizing quantum repeaters and large cluster states for LDQC and LOQC.
arXiv Detail & Related papers (2020-09-09T02:39:50Z) - Entangled Photon-Pair Sources based on three-wave mixing in bulk
crystals [61.84816391246232]
Entangled photon-pairs are a critical resource in quantum communication protocols ranging from quantum key distribution to teleportation.
The increased prominence of quantum networks has led to growing interest in deployable high performance entangled photon-pair sources.
This manuscript provides a review of the state-of-the-art for bulk-optics-based SPDC sources with continuous wave pump.
arXiv Detail & Related papers (2020-07-30T10:35:06Z) - 128 Identical Quantum Sources Integrated on a Single Silica Chip [9.023058106086548]
Integrated photonic chip offers an elegant way to construct large-scale quantum systems.
We experimentally demonstrate 128 identical quantum sources integrated on a single silica chip.
arXiv Detail & Related papers (2020-05-26T18:00:00Z) - Near-ideal spontaneous photon sources in silicon quantum photonics [55.41644538483948]
Integrated photonics is a robust platform for quantum information processing.
Sources of single photons that are highly indistinguishable and pure, that are either near-deterministic or heralded with high efficiency, have been elusive.
Here, we demonstrate on-chip photon sources that simultaneously meet each of these requirements.
arXiv Detail & Related papers (2020-05-19T16:46:44Z) - Quantum teleportation with hybrid entangled resources prepared from
heralded quantum states [68.8204255655161]
We propose the generation of a hybrid entangled resource (HER)
The work includes a discussion about the fidelity dependence on the geometrical properties of the medium through which the HER is generated.
No spectral filtering is employed in the heralding process, which emphasizes the feasibility of this scheme without compromising photon flux.
arXiv Detail & Related papers (2020-02-07T21:20:50Z)
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.