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Article

Direct current electric conductivity of ferroelectric liquid crystals–gold nanoparticles dispersion measured with capacitive current technique

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Pages 1507-1515 | Received 26 Jan 2020, Accepted 07 Mar 2020, Published online: 24 Mar 2020

References

  • Perlmutter SH, Doroski D, Moddel G. Degradation of liquid crystal device performance due to selective adsorption of ions. Appl Phys Lett. 1996;69(9):1182–1184.
  • Shasti M, Gleeson JT, Luchette P. Electroconvection characterization of guest-host nematic liquid crystals for dynamic scattering mode applications. Liq Cryst. 2019;46(12):1821–1826.
  • Mizusaki M. An innovative technique based on voltammetric profiling and current–voltage characteristics for determination of residual direct-current voltage of liquid crystal cells. Liq Cryst. 2019;1–6. DOI:10.1080/02678292.2019.1662
  • Naemura S. Electrical properties of liquid-crystal materials for display applications. MRS Proc. 1999;559:263–274.
  • Garbovskiy Y. Time-dependent electrical properties of liquid crystal cells : unravelling the origin of ion generation. Liq Cryst. 2018;45(10):1540–1548.
  • Palto SP, Podgornov FV, Haase W, et al. Modeling electrooptical effects in ferroelectric liquid crystals. 1. Basic equations and experimental tests. Mol Cryst Liq Cryst. 2004;410(1):95–104.
  • Blinov LM, Palto SP, Pozhidaev EP, et al. Modeling electrooptical effects in ferroelectric liquid crystals. 2. V-shape switching in the SmC* phase. Mol Cryst Liq Cryst. 2004;410(1):105–115.
  • Blinov LM, Pozhidaev EP, Podgornov FV, et al. Hysteresis inversion frequency for V-shape electrooptical switching controlled by dynamic impedance of ferroelectric SmC* phase. Ferroelectrics. 2002;277(1):3–11.
  • Das N, Borah D, Acharya H, et al. Grafting a mesomorphic Schiff base onto gold nanoparticle via ester link–photoluminescence, mesomorphism, electrical conductivity and antioxidant activity. Liq Cryst. 2019;46(4):609–617.
  • Elkhalgi HHM, Khandka S, Singh UB, et al. Dielectric and electro-optical properties of a nematic liquid crystalline material with gold nanoparticles. Liq Cryst. 2018;45(12):1795–1801.
  • Garbovskiy Y. Ions in liquid crystals doped with nanoparticles: conventional and counterintuitive temperature effects. Liq Cryst. 2017;44(9):1402–1408.
  • Garbovskiy Y. Kinetics of ion-capturing/ion-releasing processes in liquid crystal devices utilizing contaminated nanoparticles and alignment films. Nanomaterials. 2018;8(2):59.
  • Garbovskiy Y. Electrical properties of liquid crystal nano-colloids analysed from perspectives of the ionic purity of nano-dopants. Liq Cryst. 2016;43(5):648–653.
  • Garbovskiy Y. Impact of contaminated nanoparticles on the non-monotonous change in the concentration of mobile ions in liquid crystals. Liq Cryst. 2016;43(5):664–670.
  • Shivaraja SJ, Gupta RK, Kumar S, et al. Effect of functionalised silver nanoparticle on the elastic constants and ionic transport of a nematic liquid crystal. Liq Cryst. 2019;46(12):1868–1876.
  • Blinov LM, Palto SP, Pozhidaev EP, et al. High frequency hysteresis-free switching in thin layers of smectic-C * ferroelectric liquid crystals. Phys Rev E. 2005;71(5):051715.
  • Blinov LM, Palto SP, Podgornov FV, et al. Hysteresis-free electro-optical switching in conductive ferroelectric liquid crystals: experiments and modelling. Liq Cryst. 2004;31(1):61–70.
  • Shen Y, Dierking I. Perspectives in liquid-crystal-aided nanotechnology and nanoscience. Appl Sci. 2019;9(12):2512.
  • Prakash J, Khan S, Chauhan S, et al. Metal oxide-nanoparticles and liquid crystal composites: a review of recent progress. J Mol Liq. 2019;297:112052.
  • Yadav SP, Yadav K, Lahiri J, et al. Ferroelectric liquid crystal nanocomposites: recent development and future perspective. Liq Cryst Rev. 2018;6(2):143–169.
  • Dierking I. From colloids in liquid crystals to colloidal liquid crystals. Liq Cryst. 2019;46(13–14):2057–2074.
  • Shukla RK, Galyametdinov YG, Shamilov RR, et al. Effect of CdSe quantum dots doping on the switching time, localised electric field and dielectric parameters of ferroelectric liquid crystal. Liq Cryst. 2014;41(12):1889–1896.
  • Chandran A, Prakash J, Naik KK, et al. Preparation and characterization of MgO nanoparticles/ferroelectric liquid crystal composites for faster display devices with improved contrast. J Mater Chem C. 2014;2(10):1844–1853.
  • Mishra R, Hazarika J, Hazarika A, et al. Dielectric properties of a strongly polar nematic liquid crystal compound doped with gold nanoparticles. Liq Cryst. 2018;45(11):1661–1671.
  • Goel P, Upadhyay PL, Biradar AM. Induced dielectric relaxation and enhanced electro-optic parameters in Ni nanoparticles – ferroelectric liquid crystal dispersions. Liq Cryst. 2013;40(1):45–51.
  • Podgornov FV, Gavrilyak M, Karaawi A, et al. Mechanism of electrooptic switching time enhancement in ferroelectric liquid crystal/gold nanoparticles dispersion. Liq Cryst. 2018;45(11):1594–1602.
  • Serghei A, Tress M, Sangoro JR, et al. Electrode polarization and charge transport at solid interfaces. Phys Rev B. 2009;80(18):184301.
  • Samet M, Levchenko V, Boiteux G, et al. Electrode polarization vs. Maxwell-Wagner-Sillars interfacial polarization in dielectric spectra of materials: characteristic frequencies and scaling laws. J Chem Phys. 2015;142(19):194703.
  • Podgornov FV, Gavrilyak M, Karaawi A, et al. Mesophase materials as smart media for emerging pressure sensors: capacitive method of measurement of DC conductivity. 2018 Global Smart Industry Conference (GloSIC); South Ural State University: Chelyabinsk, Russia. IEEE; 2018. p. 1–5.
  • Makarov GI, Bartashevich EV, Khnykina KA, et al. Molecular dynamics simulation and experimental investigation of material and structural parameters of multicomponent ferroelectric liquid crystal mixture. J Mol Liq. 2019;283:630–637.
  • Podgornov FV, Haase W. Chiroptic response of ferroelectric liquid crystals triggered with localized surface plasmon resonance of achiral gold nanorods. Appl Phys Lett. 2018;112(2):021102.
  • Podgornov FV, Wipf R, Stühn B, et al. Low-frequency relaxation modes in ferroelectric liquid crystal/gold nanoparticle dispersion: impact of nanoparticle shape. Liq Cryst. 2016;43(11):1536–1547.
  • Garbovskiy Y. Adsorption/desorption of ions in liquid crystal nanocolloids: the applicability of the langmuir isotherm, impact of high electric fields and effects of the nanoparticle’s size. Liq Cryst. 2016;43(6):853–860.
  • Garbovskiy Y. The purification and contamination of liquid crystals by means of nanoparticles. The case of weakly ionized species. Chem Phys Lett. 2016;658:331–335.
  • Garbovskiy Y. Ions and size effects in nanoparticle/liquid crystal colloids sandwiched between two substrates. The case of two types of fully ionized species. Chem Phys Lett. 2017;679:77–85.

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