Entangling two levitated charged nanospheres through Coulomb interaction

Guoyao Li, Zhangqi Yin*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Limited by the thermal environment, the entanglement of a massive object is extremely difficult to generate. Based on a coherent scattering mechanism, we propose a scheme to generate the entanglement of two optically levitated nanospheres through the Coulomb interaction. Two nanospheres are charged and coupled to each other through the Coulomb interaction. In this manner, the entanglement of two nanospheres is induced either under a weak/strong optomechanical coupling regime or under an ultra-strong optomechanical coupling regime. The charges, radius and distance of the two nanospheres are taken into consideration to enhance the Coulomb interaction, thereby achieving a higher degree of entanglement in the absence of ground-state cooling. The corresponding maximum entanglement can be attained as the dynamics of the system approaches the boundary between the steady and the unsteady regimes. This provides a useful resource for both quantum-enhanced sensing and quantum information processing, as well as a new platform for studying many-body physics.

Original languageEnglish
Article number074205
JournalChinese Physics B
Volume33
Issue number7
DOIs
Publication statusPublished - 1 Jul 2024

Keywords

  • coherent scattering
  • Coulomb interaction
  • quantum entanglement

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