Quantum formulation for nanoscale optical and material chirality: symmetry issues, space and time parity, and observables

被引:56
作者
Andrews, D. L. [1 ]
机构
[1] Univ East Anglia, Norwich Res Pk, Norwich NR4 7TJ, Norfolk, England
关键词
chirality; optical activity; chiral optics; symmetry; quantum electrodynamics; optical angular momentum; nano-optics; ORBITAL ANGULAR-MOMENTUM; GAUGE-INVARIANCE; NATURAL-PRODUCTS; LASER-PULSES; LIGHT; FIELD; GENERATION; VORTEX; ELECTRODYNAMICS; TRANSFORMATION;
D O I
10.1088/2040-8986/aaaa56
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
To properly represent the interplay and coupling of optical and material chirality at the photon-molecule or photon-nanoparticle level invites a recognition of quantum facets in the fundamental aspects and mechanisms of light-matter interaction. It is therefore appropriate to cast theory in a general quantum form, one that is applicable to both linear and nonlinear optics as well as various forms of chiroptical interaction including chiral optomechanics. Such a framework, fully accounting for both radiation and matter in quantum terms, facilitates the scrutiny and identification of key issues concerning spatial and temporal parity, scale, dissipation and measurement. Furthermore it fully provides for describing the interactions of structured or twisted light beams with a vortex character, and it leads to the complete identification of symmetry conditions for materials to provide for chiral discrimination. Quantum considerations also lend a distinctive perspective to the very different senses in which other aspects of chirality are recognized in metamaterials. Duly attending to the symmetry principles governing allowed or disallowed forms of chiral discrimination supports an objective appraisal of the experimental possibilities and developing applications.
引用
收藏
页数:29
相关论文
共 202 条
  • [1] Afanasiev GN, 1996, NUOVO CIMENTO A, V109, P271, DOI 10.1007/BF02731014
  • [2] Ahuja S., 2011, Chiral separation methods for pharmaceutical and biotechnological products
  • [3] Transverse Chiral Optical Forces by Chiral Surface Plasmon Polaritons
    Alizadeh, M. H.
    Reinhard, Bjoern M.
    [J]. ACS PHOTONICS, 2015, 2 (12): : 1780 - 1788
  • [4] The orbital angular momentum of light
    Allen, L
    Padgett, MJ
    Babiker, M
    [J]. PROGRESS IN OPTICS, VOL XXXIX, 1999, 39 : 291 - 372
  • [5] ORBITAL ANGULAR-MOMENTUM OF LIGHT AND THE TRANSFORMATION OF LAGUERRE-GAUSSIAN LASER MODES
    ALLEN, L
    BEIJERSBERGEN, MW
    SPREEUW, RJC
    WOERDMAN, JP
    [J]. PHYSICAL REVIEW A, 1992, 45 (11): : 8185 - 8189
  • [6] Andrews D. L., 2016, Optical nanomanipulation
  • [7] Andrews D. L., 2013, The Angular Momentum of Light
  • [8] Perspective: Quantum Hamiltonians for optical interactions
    Andrews, David L.
    Jones, Garth A.
    Salam, A.
    Woolley, R. Guy
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2018, 148 (04)
  • [9] On the viability of achieving chiral separation through the optical manipulation of molecules
    Andrews, David L.
    Bradshaw, David S.
    [J]. COMPLEX LIGHT AND OPTICAL FORCES IX, 2015, 9379
  • [10] Measures of chirality and angular momentum in the electromagnetic field
    Andrews, David L.
    Coles, Matt M.
    [J]. OPTICS LETTERS, 2012, 37 (15) : 3009 - 3011