The fastest generation of multipartite entanglement with natural interactions
arXiv:2303.09238 · doi:10.1088/1367-2630/acf953
Abstract
Natural interactions among multiple quantum objects are fundamentally composed of two-body terms only. In contradistinction, single global unitaries that generate highly entangled states typically arise from Hamiltonians that couple multiple individual subsystems simultaneously. Here, we study the time to produce strongly nonclassical multipartite correlations with a single unitary generated by the natural interactions. We restrict the symmetry of two-body interactions to match the symmetry of the target states and focus on the fastest generation of multipartite entangled Greenberger-Horne-Zeilinger (GHZ), W, Dicke and absolutely maximally entangled (AME) states for up to seven qubits. These results are obtained by constraining the energy in the system and accordingly can be seen as state-dependent quantum speed limits for symmetry-adjusted natural interactions. They give rise to a counter-intuitive effect where the creation of particular entangled states with an increasing number of particles does not require more time. The methods used rely on extensive numerical simulations and analytical estimations.
journal version, 12 pages, 6 figures
References in corpus (8)
- Quantum information processing with circuit quantum electrodynamics
- Multipartite entanglement, quantum-error-correcting codes, and entangling power of quantum evolutions
- PyGAD: An Intuitive Genetic Algorithm Python Library
- Quantum Speed Limit for States with a Bounded Energy Spectrum
- Efficient construction of three- and four-qubit quantum gates by global entangling gates
- Synthesizing five-body interaction in a superconducting quantum circuit
- Entanglement in a two-qubit Heisenberg XXX chain with x-components of Dzyaloshinskii-Moriya and Kaplan-Shekhtman-Entin-Wohlman-Aharony interactions
- Comparing Two-Qubit and Multi-Qubit Gates within the Toric Code
Cited by in corpus (8)
- Fundamental speed limits on entanglement dynamics of bipartite quantum systems
- Exploring Many-body Interactions Through Quantum Fisher Information
- Faster entanglement driven by quantum resonance in many-body kicked rotors
- Quantum sensing of even- versus odd-body interactions
- Lattice-enabled detection of spin-dependent three-body interactions
- Coherent Generation and Protection of Anticoherent Spin States
- Quantum Circuits for High-Dimensional Absolutely Maximally Entangled States
- Inter-qubit correlation dynamics driven by mutual interactions