English

Massive Spatial Qubits for Testing Macroscopic Nonclassicality and Casimir Induced Entanglement

Quantum Physics 2023-06-07 v3

Abstract

An open challenge in physics is to expand the frontiers of the validity of quantum mechanics by evidencing nonclassicality of the centre of mass state of a macroscopic object. Yet another equally important task is to evidence the essential nonclassicality of the interactions which act between macroscopic objects. Here we introduce a new tool to meet these challenges: massive spatial qubits. In particular, we show that if two distinct localized states of a mass are used as the 0|0\rangle and 1|1\rangle states of a qubit, then we can measure this encoded spatial qubit with a high fidelity in the σx,σy\sigma_x, \sigma_y and σz\sigma_z bases simply by measuring its position after different durations of free evolution. We show how this technique can be used to reveal an irreducible nonclassicality through a Bell-inequality violation arising from the entanglement of the centre of mass of a nano-crystal with its spin in a Stern-Gerlach setup. Secondly, we show how our methodology, in conjuction with the Casimir interaction, offers a powerful method to create and certify non-Gaussian entanglement between two neutral nano-objects. Fundamentally, the generation of such an entanglement provides an empirical means for demonstrating an inherent quantumness of the Casimir interaction.

Keywords

Cite

@article{arxiv.2106.11906,
  title  = {Massive Spatial Qubits for Testing Macroscopic Nonclassicality and Casimir Induced Entanglement},
  author = {Bin Yi and Urbasi Sinha and Dipankar Home and Anupam Mazumdar and Sougato Bose},
  journal= {arXiv preprint arXiv:2106.11906},
  year   = {2023}
}

Comments

22 pages, 3 Figures

R2 v1 2026-06-24T03:28:39.334Z