Preparations for Quantum Simulations of Quantum Chromodynamics in 1+1
Dimensions: (II) Single-Baryon $\beta$-Decay in Real Time
- URL: http://arxiv.org/abs/2209.10781v3
- Date: Mon, 10 Apr 2023 22:49:43 GMT
- Title: Preparations for Quantum Simulations of Quantum Chromodynamics in 1+1
Dimensions: (II) Single-Baryon $\beta$-Decay in Real Time
- Authors: Roland C. Farrell, Ivan A. Chernyshev, Sarah J. M. Powell, Nikita A.
Zemlevskiy, Marc Illa and Martin J. Savage
- Abstract summary: A framework for quantum simulations of real-time weak decays of hadrons and nuclei is presented.
A single generation of the Standard Model is found to require 16 qubits per spatial lattice site.
Quantum circuits which implement time evolution in this lattice theory are developed and run on Quantinuum's H1-1 20-qubit trapped ion system.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: A framework for quantum simulations of real-time weak decays of hadrons and
nuclei in a 2-flavor lattice theory in one spatial dimension is presented. A
single generation of the Standard Model is found to require 16 qubits per
spatial lattice site after mapping to spin operators via the Jordan-Wigner
transformation. Both quantum chromodynamics and flavor-changing weak
interactions are included in the dynamics, the latter through four-Fermi
effective operators. Quantum circuits which implement time evolution in this
lattice theory are developed and run on Quantinuum's H1-1 20-qubit trapped ion
system to simulate the $\beta$-decay of a single baryon on one lattice site.
These simulations include the initial state preparation and are performed for
both one and two Trotter time steps. The potential intrinsic error-correction
properties of this type of lattice theory are discussed and the leading lattice
Hamiltonian required to simulate $0\nu\beta\beta$-decay of nuclei induced by a
neutrino Majorana mass term is provided.
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