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Article

Dielectric properties of liquid crystalline composites doped with nano-dimensional fragments of shungite carbon

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Pages 1345-1352 | Received 14 Aug 2018, Accepted 15 Dec 2018, Published online: 01 Apr 2019

References

  • Chilaya G. Cholesteric liquid crystals: optics, electrooptics and photo-optics. Chirality Liq Cryst. 2001;159–185.
  • Oswald P, Pieranski P. Nematic and cholesteric liquid crystals. USA: Taylor and Francis Group; 2005.
  • Schwartz M, Lenzini G, Geng Y, et al. Cholesteric liquid crystal shells as enabling materials for information-rich design and architechture. Adv Mater. 2018;30:1707382.
  • Usol’tseva NV, Smirnova MV, Sotsky VV, et al. Physical properties of cholesteric liquid crystals – carbon nanotube dispersions. J Phys. 2014;558:12003.
  • Ilchishyn IP, Lisetski LN, Mykytiuk TV. Reversible phototuning of laser frequency in dye-doped cholesteric liquid crystal. Opt Mater Express. 2011;8:1484–1493.
  • Hsiao YC, Tang CY, Lee W. Fast-switching bistable cholesteric intensity modulator. Opt Express. 2011;19:9744–9749.
  • Hwang J, Song MH, Park B, et al. Electro-optical diode based on photonic bandgap liquid-crystal heterojunctions. Nat Mater. 2005;5:383–387.
  • Wu PC, Lee W. Phase and dielectric behaviors of a polymorphic liquid crystal doped with graphene nanoplatelets. Appl Phys Lett. 2013;102:162904.
  • Wu PC, Lisetski LN, Lee W. Suppressed ionic effect and low-frequency texture transitions in a cholesteric liquid crystal doped with graphene nanoplatelets. Opt Express. 2015;23:11195–11204.
  • Infusino M, De Luca A, Ciuchi F, et al. Optical and electrical characterization of a gold nanoparticle dispersion in a chiral liquid crystal matrix. J Mater Sci. 2014;49:1805–1811.
  • Sheka EF, Rozhkova NN. Shungite as the natural pantry of nanoscale graphene oxide. Int J Smart Nano Mat. 2014;5:1–16.
  • Rozhkova NN, Rozhkov SP, Goryunov AS. Natural graphene-based shungite nanocarbon. In: Carbon nanomaterials sourcebook. Vol. 1, CRC Press; 2016. p. 151–174.
  • Dierking I. Nanomaterials in liquid crystals. Nanomaterials. 2018;8:453–457.
  • Kumar P, Maiti UN, Lee KE, et al. Rheological properties of graphene oxide liquid crystal. Carbon. 2014;80:453–461.
  • Kim JY, Kim SO. Electric fields line up graphene oxide. Nat Mater. 2014;13:325–326.
  • Shivakumar U, Mirzaei J, Feng X, et al. Nanoparticles: complex and multifaceted additives for liquid crystals. Liq Cryst. 2011;38:1495–1514.
  • Usol’tseva NV, Smirnova MV, Kazak AV, et al. Rheological characteristics of different carbon nanoparticles in cholesteric mesogen dispersions as lubricant coolant additives. J Frict Wear. 2015;36:380–385.
  • Rasna MV, Cmok L, Evans DR, et al. Phase transitions, optical, dielectric and viscoelastic properties of colloidal suspensions of BaTiO3 nanoparticles and cyanobiphenyl liquid crystals. Liq Cryst. 2015;42:1059–1067.
  • Basu R, Germano S. Nematic anchoring on carbon nanotubes. Appl Phys Lett. 2009;95:173113.
  • Duran H, Gazdecki B, Yamashita A, et al. Effect of carbon nanotubes on phase transitions of nematic liquid crystals. Liq Cryst. 2005;32:815–821.
  • Gvozdev AA, Usol’tseva NV, Kozinez MV, et al. Complex approach to the tribotechnical processing of elements for automobile and tractor engines. J Frict Wear. 2016;37:155–159.
  • Vill V. LiqCryst database of liquid crystalline compounds for personal computers. Hamburg: LCI Publisher GmbH; 2004.
  • Kovalevski VV, Buseck PR, Cowley JM. Comparison of carbon in shungite rocks to other natural carbons: an X-ray and TEM study. Carbon. 2001;39:243–256.
  • Pandey AS, Dhar R, Achalkumar AS, et al. Thermodynamic, optical and dielectric properties of the twisted grain boundary phases of the homologous series of 4-n-alkyloxy-4ʹ-(cholesteryloxycarbonyl-1-butyloxy)chalcone. Liq Cryst. 2011;38:775–784.
  • Wu PC, Chen HL, Rudakova NV, et al. Electro-optical and dielectric properties of polymer-stabilized blue phase liquid crystal impregnated with a fluorine-containing compound. J Mol Liq. 2018;267:138–143.
  • Ismaili M, Bougrioua F, Isaert N, et al. Dielectric properties of twist grain boundary phases: influence of the anchoring and the distance between grain boundaries. Phys Rev E. 2001;65:011701.
  • Chausov DN, Kurilov AD, Belyaev VV, et al. Parameters of LC molecules’ movement measured by dielectric spectroscopy in wide temperature range. Opto-Electron Rev. 2018;26:44–49.
  • Chausov DN, Kurilov AD, Konstantinov MS, et al. Dielectric permittivity anisotropy of the LC-1282 mixture. Liq Cryst Appl. 2015;2:35–43, (in Russian).
  • Perkowski P. Dielectric spectroscopy of liquid crystals. Theoretical model of ITO electrodes influence on dielectric measurements. Opto-Electron Rev. 2009;17:180–186.
  • Perkowski P. Dielectric spectroscopy of liquid crystals. Electrodes resistivity and connecting wires inductance influence on dielectric measurements. Opto-Electron Rev. 2012;20:79–86.
  • Javadian S, Dalir N, Kakemam J. Non-covalent intermolecular interactions of colloidal nematic liquid crystals doped with graphene oxide. Liq Cryst. 2017;44:1341–1355.
  • Moynihan CT. Description and analysis of electrical relaxation data for ionically conducting glasses and melts. Solid State Ion. 1998;105:175–183.
  • Coffey WT, Kalmykov YP, Titov SV. Anomalous dielectric relaxation in the context of the Debye model of noninertial rotational diffusion. J Chem Phys. 2002;116:6422–6426.
  • YaduvanshiP, Mishra A, Kumar S, et al. Effect of silver nanoparticles on frequency and temperature-dependent electrical parameters of a discotic liquid crystalline material. Liq Cryst. 2015;42:1478–1489.
  • Ehrgott M. Multicriteria Optimization. Springer Science & Business Media; 2005.
  • Fano WG, Trainotti V. Dielectric properties of soils. Annual Report Conference on Electrical Insulation and Dielectric Phenomena, 2001. p. 75–78.
  • Ishai PB, Talary MS, Caduff A, et al. Electrode polarization in dielectric measurements: a review. Meas SciTechnol. 2013;24:102001.

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