313
Views
23
CrossRef citations to date
0
Altmetric
Invited Article

A command layer for anisotropic plasmonic photo-thermal effects in liquid crystal

, , , , , ORCID Icon, , , & show all
Pages 2214-2220 | Received 02 Jun 2018, Published online: 04 Sep 2018

References

  • De Sio L, Roberts DE, Liao Z, et al. Digital polarization holography advancing geometrical phase optics. Opt Express. 2016;24(16):18297–18306.
  • De Sio L, Cataldi U, Guglielmelli A, et al. Dynamic optical properties of gold nanoparticles/cholesteric liquid crystal arrays. MRS Commun. 2018;1–6.
  • O’Neill M, Kelly SM. Photoinduced surface alignment for liquid crystal displays. J Phys D Appl Phys. 2000;33(10):R67.
  • Wu Y, Demachi Y, Tsutsumi O, et al. Photoinduced alignment of polymer liquid crystals containing azobenzene moieties in the side chain. 1. Effect of light intensity on alignment behavior. Macromol. 1998;31(2):349–354.
  • Yaroshchuk O, Reznikov Y. Photoalignment of liquid crystals: basics and current trends. J Mater Chem. 2012;22(2):286–300.
  • Miller R. U.S. patent application no. 10/148,680. 2003.
  • Schadt M, Seiberle H, Schuster A, et al. Photo-induced alignment and patterning of hybrid liquid crystalline polymer films on single substrates. Jpn J Appl Phys. 1995;34(6B):L764.
  • Schadt M, Schmitt K, Kozinkov V, et al. Surface-induced parallel alignment of liquid crystals by linearly polymerized photopolymers. Jpn J Appl Phys. 1992;31(7R):2155.
  • Muravsky A, Murauski A, Li X, et al. Optical rewritable liquid‐crystal‐alignment technology. J Soc Inf Disp. 2007;15(4):267–273.
  • Shishido A. Rewritable holograms based on azobenzene-containing liquid-crystalline polymers. Polymer J. 2010;42(7):525.
  • Sato S. Liquid-crystal lens-cells with variable focal length. Jpn J Appl Phys. 1979;18(9):1679.
  • Nersisyan S, Tabiryan N, Steeves DM, et al. Fabrication of liquid crystal polymer axial waveplates for UV-IR wavelengths. Optics Express. 2009;17(14):11926–11934.
  • Nersisyan SR, Tabiryan NV, Steeves DM, et al. The promise of diffractive waveplates. Opt Photonics News. 2010;21(3):40–45.
  • Nersisyan SR, Tabiryan NV, Mawet D, et al. Improving vector vortex waveplates for high-contrast coronagraphy. Opt Express. 2013;21(7):8205–8213.
  • Chen P, Ji W, Wei BY, et al. Generation of arbitrary vector beams with liquid crystal polarization converters and vector-photoaligned q-plates. Appl Phys Lett. 2015;107(24):241102.
  • Cardano F, Karimi E, Slussarenko S, et al. Polarization pattern of vector vortex beams generated by q-plates with different topological charges. Appl Opt. 2012;51(10):C1–C6.
  • Nersisyan SR, Tabiryan NV, Steeves DM, et al. The principles of laser beam control with polarization gratings introduced as diffractive waveplates. In: Liquid Crystals XIV. Vol. 7775. International Society for Optics and Photonics; 2010;8(2), Aug. p. 77750U.
  • Mawet D, Murakami N, Delacroix C, et al. Taking the vector vortex coronagraph to the next level for ground-and space-based exoplanet imaging instruments: review of technology developments in the USA, Japan, and Europe. In: Techniques and instrumentation for detection of exoplanets V. Vol. 8151. International Society for Optics and Photonics; 2011Sep. p. 815108.
  • Sanders AW. Optical properties of metallic nanostructures. New Haven: Yale University; 2007.
  • Pelton M, Aizpurua J, Bryant G. Metal‐nanoparticle plasmonics. Laser Photon Rev. 2008;2(3):136–159.
  • Halas NJ. Plasmonics: an emerging field fostered by Nano Letters. Nano Lett. 2010;10(10):3816–3822.
  • Hutter E, Fendler JH. Exploitation of localized surface plasmon resonance. Adv Mater. 2004;16(19):1685–1706.
  • Jain PK, Huang X, El-Sayed IH, et al. Review of some interesting surface plasmon resonance-enhanced properties of noble metal nanoparticles and their applications to biosystems. Plasmonics. 2007;2(3):107–118.
  • Baffou G, Quidant R. Thermo‐plasmonics: using metallic nanostructures as nano‐sources of heat. Laser Photon Rev. 2013;7(2):171–187.
  • Baffou G, Girard C, Quidant R. Mapping heat origin in plasmonic structures. Phys Rev Lett. 2010;104(13):136805.
  • Baffou G, Quidant R, García de Abajo FJ. Nanoscale control of optical heating in complex plasmonic systems. ACS Nano. 2010;4(2):709–716.
  • De Sio L, Placido T, Comparelli R, et al. Next-generation thermo-plasmonic technologies and plasmonic nanoparticles in optoelectronics. Prog Quantum Electron. 2015;41:23–70.
  • Palermo G, Cataldi U, De Sio L, et al. Optical control of plasmonic heating effects using reversible photo-alignment of nematic liquid crystals. Appl Phys Lett. 2016;109(19):191906.
  • De Sio L, Placido T, Serak S, et al. Nano-localized heating source for photonics and plasmonics. Adv Opt Mater. 2013;1(12):899–904.
  • Pezzi L, Palermo G, Veltri A, et al. Photo-thermal study of a layer of randomly distributed gold nanoparticles: from nano-localization to macro-scale effects. J Phys D Appl Phys. 2017;50(43):435302.
  • Palermo G, Ritacco T, Aceti DM, et al. Photo-thermal effects in 1D gratings of gold nanoparticles. Cryst. 2017;7(1):14.
  • Palermo G, Pagnotto D, Ricciardi L, et al. Thermoplasmonic Effects in Gain-Assisted Nanoparticle Solutions. J Phys Chem C. 2017;121(43):24185–24191.
  • Kimling J, Maier M, Okenve B, et al. Turkevich method for gold nanoparticle synthesis revisited. J Phys Chem B. 2006;110(32):15700–15707.
  • De Sio L, Klein G, Serak S, et al. All-optical control of localized plasmonic resonance realized by photoalignment of liquid crystals. J Mater Chem C. 2013;1(45):7483–7487.
  • Bohren CF, Huffman DR. Absorption and scattering of light by small particles. Hoboken (NJ): John Wiley & Sons; 2008.
  • Carslaw HS, Jaeger JC. Conduction of heat in solids. 2nd ed. Oxford: Clarendon Press, 1959; 1959.
  • Pezzi L, De Sio L, Veltri A, et al. Photo thermal effects in gold nanoparticles dispersed in thermotropic nematic liquid crystalsermotropic nematic liquid crystals. PCCP. 2015;17:20281–20287.
  • Maier SA. Plasmonics: fundamentals and applications. Berlin: Springer Science & Business Media; 2007.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.