Rotating-compensator multichannel transmission ellipsometry of a thin-film helicoidal bianisotropic medium

Abstract We have employed a novel multichannel transmission ellipsometer based on the rotating-compensator principle to characterize a MgF 2 thin film helicoidal bianisotropic medium (HBM) deposited on a glass substrate. A HBM is a rotationally inhomogeneous anisotropic material obtained in thin film form by deposition at a glancing angle onto a rotating substrate to yield helical columns or helices with (i) an alignment perpendicular to the substrate surface, (ii) an in-plane scale of the order of nanometres, and (iii) a helix pitch of the order of the wavelength of visible light. The rotating-compensator multichannel ellipsometer provides a complete description of the optical response of this material to an incident linearly polarized plane wave. Evidence is introduced for circularly birefringent and dichroic behavior based on the observed rotation and ellipticity imparted to a linearly polarized monochromatic plane wave when it is transmitted at normal incidence through the ambient/HBM/substrate system. The spectra in both the optical rotation and ellipticity exhibit strong features in a narrow wavelength zone (430–450 nm) not unlike the Cotton effect in isotropic chiral media. The features in the experimental spectra are found to be in accord with theoretical predictions, using values for the pitch of the helices and their packing density estimated from scanning electron microscopy and gravimetry, respectively.

[1]  Kevin Robbie,et al.  FIRST THIN FILM REALIZATION OF A HELICOIDAL BIANISOTROPIC MEDIUM , 1995 .

[2]  H. Nguyen,et al.  Multichannel transmission ellipsometer for characterization of anisotropic optical materials , 1994 .

[3]  R. Azzam PIE: Perpendicular-incidence ellipsometry—application to the determination of the optical properties of uniaxial and biaxial absorbing crystals , 1976 .

[4]  Robert W. Collins,et al.  Automatic rotating element ellipsometers: Calibration, operation, and real‐time applications , 1990 .

[5]  J. Silcox,et al.  Small Angle Electron Scattering from Vacuum Condensed Metallic Films II. Experimental Results , 1967 .

[6]  NIELS O. YOUNG,et al.  Optically Active Fluorite Films , 1959, Nature.

[7]  A. Lakhtakia,et al.  Second harmonic emission from an axially excited slab of a dielectric thin-film helicoidal bianisotropic medium , 1998, Proceedings of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.

[8]  M. J. Brett,et al.  Sculptured thin films and glancing angle deposition: Growth mechanics and applications , 1997 .

[9]  R. M. A. Azzam,et al.  Chiral thin solid films: Method of deposition and applications , 1992 .

[10]  M. J. Brett,et al.  Chiral sculptured thin films , 1996, Nature.

[11]  S. Chandrasekhar Liquid Crystals: Cholesteric liquid crystals , 1992 .

[12]  Akhlesh Lakhtakia,et al.  On light propagation in helicoidal bianisotropic mediums , 1995, Proceedings of the Royal Society of London. Series A: Mathematical and Physical Sciences.