Near-deterministic hybrid generation of arbitrary photonic graph states using a single quantum emitter and linear optics
arXiv:2205.09750 · doi:10.22331/q-2023-04-27-992
Abstract
Since linear-optical two-photon gates are inherently probabilistic, measurement-based implementations are particularly well suited for photonic platforms: a large highly-entangled photonic resource state, called a graph state, is consumed through measurements to perform a computation. The challenge is thus to produce these graph states. Several generation procedures, which use either interacting quantum emitters or efficient spin-photon interface, have been proposed to create these photonic graph states deterministically. Yet, these solutions are still out of reach experimentally since the state-of-the-art is the generation of a linear graph state. Here, we introduce near-deterministic solutions for the generation of graph states using the current quantum emitter capabilities. We propose hybridizing quantum-emitter-based graph state generation with all-photonic fusion gates to produce graph states of complex topology near-deterministically. Our results should pave the way towards the practical implementation of resource-efficient quantum information processing, including measurement-based quantum communication and quantum computing.
22 pages, 10 figures
References in corpus (18)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Quantum computational advantage using photons
- Multi-party entanglement in graph states
- Resource-efficient linear optical quantum computation
- Indistinguishable photons from separated silicon-vacancy centers in diamond
- Phase-Programmable Gaussian Boson Sampling Using Stimulated Squeezed Light
- Deterministic Generation of a Cluster State of Entangled Photons
- A photonic cluster state machine gun
- How good must single photon sources and detectors be for efficient linear optical quantum computation?
- 3/4-efficient Bell measurement with passive linear optics and unentangled ancillae
- Optically generated 2-dimensional photonic cluster state from coupled quantum dots
- Realizing a Deterministic Source of Multipartite-Entangled Photonic Qubits
- Efficient Source of Shaped Single Photons Based on an Integrated Diamond Nanophotonic System
- Perceval: A Software Platform for Discrete Variable Photonic Quantum Computing
- Loss-tolerant all-photonic quantum repeater with generalized Shor code
- Creation of Entangled Photonic States Using Linear Optics
- Entanglement in Graph States and its Applications
- Optimising graph codes for measurement-based loss tolerance
Cited by in corpus (22)
- Quantum repeaters: From quantum networks to the quantum internet
- Photonic source of heralded GHZ states
- Fusion of deterministically generated photonic graph states
- Deterministic and reconfigurable graph state generation with a single solid-state quantum emitter
- A Spin-Optical Quantum Computing Architecture
- Tailoring fusion-based photonic quantum computing schemes to quantum emitters
- Intra-QLAN Connectivity: beyond the Physical Topology
- Minimizing resource overhead in fusion-based quantum computation using hybrid spin-photon devices
- Single site-controlled inverted pyramidal InGaAs QD-nanocavity operating at the onset of the strong coupling regime
- Heralding entangled optical photons from a microwave quantum processor
- The Influence of Experimental Imperfections on Photonic GHZ State Generation
- Generating graph states with a single quantum emitter and the minimum number of fusions
- Many-Body Entanglement in Solid-State Emitters
- Transforming graph states via Bell state measurements
- Atom-mediated deterministic generation and stitching of photonic graph states
- Robustness of Bell Violation of Graph States to Qubit Loss
- Comparing Schemes for Creating Qudit Graph States from 16- & 128-dimensional Hilbert Space using Donors in Silicon
- Towards practical secure delegated quantum computing with semi-classical light
- Heralded photonic graph states with inefficient quantum emitters
- Monitoring the generation of photonic linear cluster states with partial measurements
- Hierarchical Generation and Design of Tree-Codes for Resource-Efficient Loss-Tolerant Quantum Communications
- One-Way Quantum Repeater with Rare-Earth-Ions Doped in Solids