Nanomaterials for Security pp 267-280 | Cite as
Diagnostic of Resonant Properties of Au-PTFE Nanostructures for Sensor Applications
Abstract
Diagnostic of nanocomposite films formed by gold nanoparticles embedded in a polytetrafluorethylene matrix has been performed utilizing modulation polarization spectroscopy technique. The dependencies of annealing influence on morphology structure and LSPR parameters of Au-PTFE films were studied and discussed. Effective optical parameters of Au-PTFE films were obtained. Two types of LSPR were detected: the first is on isolated non-interacting Au NPs and the second – between Au NPs caused by dipole fields’ interactions. The experimental data were confirmed by theoretical calculations. Radiative and non-radiative modes of surface plasmons were studied. Plasma frequencies were obtained for Au-PTFE films with unheated structure and annealed at temperatures of 300 and 520 ∘C by measuring of spectral characteristics of the angle of isotropic reflection \(\theta _{\rho =0}(\lambda )\).
Keywords
Localize Surface Plasmon Resonance Isotropic Reflection Mass Thickness Resonant Parameter PTFE MatrixReferences
- 1.Kreibig U, Vollmer M (1995) Optical properties of metal clusters. Springer, BerlinCrossRefGoogle Scholar
- 2.Takele H, Greve H, Pochstein C, Zaporojtchenko V, Faupe F (2006) Plasmonic properties of Ag nanoclusters in various polymer matrices. Nanotechnology 17:3499–3505ADSCrossRefGoogle Scholar
- 3.Siegel J, Kvítek O, Kolská Z, Slepicka P, Svorcík V (2012) Gold nanostructures prepared on solid surface. In: Pardhi Y (ed) Metallurgy – advances in materials and processes. InTech, pp 43–70. doi: 10.5772/51617
- 4.Miyake S, Shindo T (2013) Deposition and tribological properties of multilayer and mixed films composed of gold and polytetrafluoroethylene. Thin Solid Films 527:210–221ADSCrossRefGoogle Scholar
- 5.Faupel F, Zaporojtchenko V, Strunskus T, Elbahri M (2010) Metal-polymer nanocomposites for functional applications. Adv Eng Mater 12(12):1177–1190CrossRefGoogle Scholar
- 6.Zvatora P, Rezanka P, Procopec V, Siegel J, Svorcík V (2011) Polytetrafluorethylene-Au as a substrate for surface-enhanced Raman spectroscopy. Nanoscale Res Lett 6:366ADSCrossRefGoogle Scholar
- 7.Smausza T, Kecskemétia G, Csizmadiaa T, Benedekb F, Hoppa B (2013) Study on the applicability of polytetrafluoroethylene–silver composite thin films as sensor material. Appl Surf Sci 278:117–121ADSCrossRefGoogle Scholar
- 8.Mitsushio M, Nagaura A, Yoshidome T, Higo M (2015) Molecular selectivity development of Teflon AF1600-coatedgold-deposited surface plasmon resonance-based glass rod sensor. Prog Organ Coat 79:62–67CrossRefGoogle Scholar
- 9.Zhao J, Zhang X, Yonzon Ch R, Haes AJ, Duyne RP (2006) Localized surface plasmon resonance biosensors. Nanomedicine 1(2):219–228CrossRefGoogle Scholar
- 10.Onodera T, Toko K (2014) Towards an electronic dog nose: surface plasmon resonance immunosensor for security and safety. Sensors 14:16586–16616CrossRefGoogle Scholar
- 11.Novotny L, Hecht B (2006) Principles of nano-optics. Cambridge University Press, New YorkCrossRefGoogle Scholar
- 12.Maier SA (2007) Plasmonics: fundamental and application. Springer, New YorkGoogle Scholar
- 13.Biswas A, Aktas OC, Schurmann U, Saeed U, Zaporojtchenko V, Faupel F, Strunskus T (2004) Tunable multipole plasmon resonance wavelengths response from multicomponent polymer-metal nanocomposite systems. Appl Phys Lett 84(14):2655ADSCrossRefGoogle Scholar
- 14.Serdega BK, Rudenko SP, Maksimenko LS, Matyash IE (2011) Plasmonic optical properties and the polarization modulation technique. In: Mishchenko MI, Yatskiv Ya S, Rosenbush VK, Videen G (eds) Polarimetric detection, characterization and remote sensing (NATO Science for Peace and Security Series C: Environmental Security). Springer Science+Business Media B.V., pp 473–500Google Scholar
- 15.Kaganovich EB, Kravchenko SA, Maksimenko LS, Manoilov EG, Matyash IE, Mishchuk ON, Rudenko SP, Serdega BK (2011) Polarization properties of porous gold and silver films. Opt Spectrosc 110(4):513–521ADSCrossRefGoogle Scholar
- 16.Grynko DA, Barabash Yu M, Maksimenko LS, Matyash IE, Mishchuk ON, Rudenko SP, Serdega BK (2012) Modulation polarimetry of topological effects in films of gold-organic nanocomposites. Phys Solid State 54(11):146–153CrossRefGoogle Scholar
- 17.Fedorenko L, Matyash I, Kazantseva Z, Rudenko S, Kolomiychenko Ya (2014) Laser-assisted implantation of gold nanoparticles, formed under surface plasmon-polariton resonant conditions in polymer layer. Appl Surf Sci 290:1–5ADSCrossRefGoogle Scholar
- 18.Gritsenko KP, Krasovsky AM (2003) Thin-film deposition of polymers by vacuum degradation. Chem Rev 103(9):3607–3650CrossRefGoogle Scholar
- 19.Grytsenko KP (2008) Growth mechanism, properties and applications of vacuum-deposited PTFE films. Russ J Chem Soc 52(3):112–123Google Scholar
- 20.Grytsenko K, Schrader S (2005) Nanoclusters in polymer matrices prepared by co-deposition from a gas phase. Adv Colloid Interface Sci 116:263–276CrossRefGoogle Scholar
- 21.Goncharenko AV, Grynko DO, Grytsenko KP, Lozovski VZ (2005) Preparation and optical properties of Au/teflon nanocomposites. J Nanosci Nanotechnol 5(11):1919–1924CrossRefGoogle Scholar
- 22.Grytsenko K, Lozovski V, Strilchuk G, Schrader S (2012) Evaluation of the mechanism of the gold cluster growth during heating of the composite gold-polytetrafluoroethylene thin film. Nanomaterials 2(4):366–378CrossRefGoogle Scholar
- 23.Romanyuk VR, Kondratenko OS, Fursenko OV et al (2008) Thermally induced changes in thin gold films detected by polaritonic ellipsometry. Mater Sci Eng B 149:285–291CrossRefGoogle Scholar
- 24.Worsch Ch, Kracker M, Wisniewski W, Rüssel Ch (2012) Optical properties of self assembled oriented island evolution of ultra-thin gold layers. Thin Solid Films 520:4941–4946ADSCrossRefGoogle Scholar
- 25.Madorsky SL, Hart VE, Straus S, Sedlak VA (1953) Thermal degradation of tetrafluoroethylene and hydrofluoroethylene polymers in a vacuum. J Natl Bur Stand 51(6):327–333CrossRefGoogle Scholar
- 26.Chen B, Mokume M, Liu C, Hayashi K (2014) Structure and localized surface plasmon tuning of sputtered Au nano-islands through thermal annealing. Vacuum 110:94–101ADSCrossRefGoogle Scholar
- 27.Berezhinsky LJ, Maksimenko LS, Matyash IE, Rudenko SP, Serdega BK (2008) Polarization modulation spectroscopy of surface plasmon resonance. Opt Spectrosc 105(2):257–264ADSCrossRefGoogle Scholar
- 28.Jasperson SN, Schnatterly SE (1969) An improved method for high reflectivity ellipsometry based on a new polarization modulation technique. Rev Sci Instrum 40(6):761ADSCrossRefGoogle Scholar
- 29.Berezhinski LI, Litvin OS, Maksimenko LS, Matyash IE, Rudenko SP, Serdega BK (2009) Size effects in the internal reflection in gold cluster films in polarization modulation experiments. Opt Spectrosc 107(2):264–269ADSCrossRefGoogle Scholar
- 30.Kaganovich EB, Kizyak SA, Manoilov EG, Maksimenko LS, Matyash IE, Rudenko SP, Serdega BK (2009) Polarization-modulation spectroscopy of the surface plasmon resonance in gold nanostructures obtained by the method of pulsed laser deposition. Ukr J Phys 54(6):621–626Google Scholar
- 31.Siegel J, Lyutakov O, Rybka V, Kolská Z, Švorčík V (2011) Properties of gold nanostructures sputtered on glass. Nanoscale Res Lett 6:96ADSCrossRefGoogle Scholar
- 32.Dalacu D, Martinu L (2001) Optical properties of discontinuous gold films: finite-size effects. J Opt Soc Am B 18(1):85–92ADSCrossRefGoogle Scholar
- 33.Choi B-h, Lee H-H, Jin S, Chun S, Kim S-H (2007) Characterization of the optical properties of silver nanoparticle films. Nanotechnology 18:075706ADSCrossRefGoogle Scholar
- 34.Dmitruk NL, Goncharenko AV, Venger EF (2009) Optics of small particles and composite media. Naukova Dumka, KyivGoogle Scholar
- 35.Zamkovets AD, Kachan SM, Ponyavina AN (2003) Optical properties of thin-film metal-dielectric nanocomposites. Phys Chem Solid State 4(4):627–631Google Scholar
- 36.Xu G, Tazawa M, Jin P, Nakao S (2005) Surface plasmon resonance of sputtered Ag films: substrate and mass thickness dependence. Appl Phys A 80:1535–1540ADSCrossRefGoogle Scholar
- 37.Hutter E, Fendler J (2004) Exploitation of localized surface plasmon resonance. Adv Mater 16(19):1685–1705CrossRefGoogle Scholar
- 38.Gupta G, Tanaka D, Ito Shibata Y, Shimojo M, Furuya K, Mitsui K, Kajikawa K (2009) Absorption spectroscopy of gold nanoisland films: optical and structural characrerization. Nanotechnology 20:025703ADSCrossRefGoogle Scholar
- 39.Khlebtsov NG (2008) Optics and biophotonics of nanoparticles with a plasmon resonance. Quantum Electron 38:504–529ADSCrossRefGoogle Scholar
- 40.Maaroof AI, Gentle A, Smith GB, Cortie MB (2007) Bulk and surface plasmons in highly nanoporous gold films. J Phys D Appl Phys 40:5675–5682ADSCrossRefGoogle Scholar
- 41.Belahmar A, Chouiyakh A (2014) Influence of the fabrication conditions on the formation and properties of gold nanoparticles in alumina matrix produced by cosputtering. Int J Nano Mater Sci 3(1):16–29Google Scholar
- 42.Dmitruk NL, Litovchenko VG, Strizhevsky VL (1989) Surface polaritons in semiconductors and dielectrics. Naukova Dumka, KievGoogle Scholar