English

Scalable platform for qudit-based quantum computing using polar molecules

Quantum Physics 2026-04-22 v3

Abstract

We propose a scalable qudit-based quantum processor using rotational states of polar molecules. Previously, molecular internal states were used to enlarge Hilbert space, whereas our approach uses optical tweezer arrays to achieve scalable architectures with exponential state-space growth without increasing qudit dimensionality dd. Entangling gates are implemented by adiabatically bringing traps together to activate dipole-dipole interactions. We develop encoding schemes mapping single qubits into qudits with 2d52\leq d\leq5 and pairs of qubits into d=4,5d=4,5 qudits, enabling universal set of quantum gates. Additional levels in d=3d=3 and d=5d=5 qudits simplify multiqubit gate decompositions. We analyze experimental parameters for SrF and NaCs molecules. This approach provides a promising route to scalable quantum information processing with multilevel systems using existing experimental platforms.

Keywords

Cite

@article{arxiv.2508.10850,
  title  = {Scalable platform for qudit-based quantum computing using polar molecules},
  author = {Soleh Kh. Muminov and Evgeniy O. Kiktenko and Anastasiia S. Nikolaeva and Denis A. Drozhzhin and Sergey I. Matveenko and Aleksey K. Fedorov and Georgy V. Shlyapnikov},
  journal= {arXiv preprint arXiv:2508.10850},
  year   = {2026}
}
R2 v1 2026-07-01T04:50:20.660Z