English

Field-induced diastereomers for chiral separation

Chemical Physics 2019-12-18 v1

Abstract

A novel approach for the state-specific enantiomeric enrichment and the spatial separation of enantiomers is presented. Our scheme utilizes techniques from strong-field laser physics, specifically an optical centrifuge in conjunction with a static electric field, to create a chiral field with defined handedness. Molecular enantiomers experience unique rotational excitation dynamics and this can be exploited to spatially separate the enantiomers using electrostatic deflection. Notably, the rotational-state-specific enantiomeric enhancement and its handedness is fully controllable. To explain these effects, we introduce the conceptual framework of field-induced diastereomersfield\text{-}induced~diastereomers of a chiral molecule and perform robust quantum mechanical simulations on the prototypical chiral molecule propylene oxide (C3_3H6_6O), for which ensembles with an enantiomeric excess of up to 30 %30~\% were obtained.

Keywords

Cite

@article{arxiv.1905.07166,
  title  = {Field-induced diastereomers for chiral separation},
  author = {Andrey Yachmenev and Jolijn Onvlee and Emil Zak and Alec Owens and Jochen Küpper},
  journal= {arXiv preprint arXiv:1905.07166},
  year   = {2019}
}
R2 v1 2026-06-23T09:10:21.845Z