English

Blueprint of a Molecular Spin Quantum Processor

Quantum Physics 2023-07-25 v1 Materials Science

Abstract

The implementation of a universal quantum processor still poses fundamental issues related to error mitigation and correction, which demand to investigate also platforms and computing schemes alternative to the main stream. A possibility is offered by employing multi-level logical units (qudits), naturally provided by molecular spins. Here we present the blueprint of a Molecular Spin Quantum Processor consisting of single Molecular Nanomagnets, acting as qudits, placed within superconducting resonators adapted to the size and interactions of these molecules to achieve a strong single spin to photon coupling. We show how to implement a universal set of gates in such a platform and to readout the final qudit state. Single-qudit unitaries (potentially embedding multiple qubits) are implemented by fast classical drives, while a novel scheme is introduced to obtain two-qubit gates via resonant photon exchange. The latter is compared to the dispersive approach, finding in general a significant improvement. The performance of the platform is assessed by realistic numerical simulations of gate sequences, such as Deutsch-Josza and quantum simulation algorithms. The very good results demonstrate the feasibility of the molecular route towards a universal quantum processor.

Keywords

Cite

@article{arxiv.2305.01688,
  title  = {Blueprint of a Molecular Spin Quantum Processor},
  author = {A. Chiesa and S. Roca and S. Chicco and M. C. de Ory and A. Gómez-León and A. Gómez and D. Zueco and F. Luis and S. Carretta},
  journal= {arXiv preprint arXiv:2305.01688},
  year   = {2023}
}

Comments

16 pages, 11 figures. Accepted in Physical Review Applied

R2 v1 2026-06-28T10:23:50.545Z