Publication Cover
Materials Technology
Advanced Performance Materials
Volume 36, 2021 - Issue 4
121
Views
3
CrossRef citations to date
0
Altmetric
Research Article

Optoelectronic behaviour of zinc phthalocyanines doped with anthraquinone derivatives and their potential use in flexible devices

, , ORCID Icon, &
Pages 250-259 | Received 13 Jan 2020, Accepted 23 Mar 2020, Published online: 08 Apr 2020

References

  • Fouriaux S, Armand F, Araspin O, et al. Effect of the metal on the organization of tetraamidometallophthalocyanines in langmuir−blodgett films. J Phys Chem. 1996;100(42):16984–16988.
  • Sakamoto K, Okumura E. Syntheses and functional properties of phthalocyanines. Materials. 2009;2(3):1127–1179.
  • El-Nahass MM, Zeyada HM, Aziz MS, et al. Structural and optical properties of thermally evaporated zinc phthalocyanine thin films. Opt Mater. 2004;27:491–498.
  • Alamri SN, Joraid AA, Al-Raqa SY. Structural and optical properties of thermally evaporated 1,4,8,11,15,18,22,25-octahexylphthalocyanine thin films. Thin Solid Films. 2006;510:265–270.
  • El-Nahass MM, Ammar AH, Farag AAM, et al. Effect of heat treatment on morphological, structural and optical properties of CoMTPP thin films. Solid State Sci. 2011;13:596–600.
  • El-Nahass MM, Abd-El-Rahman KF, Al-Ghamdi AA, et al. Optical properties of thermally evaporated tin-phthalocyanine dichloride thin films, SnPcCl2. Phys B. 2004;344:398–406.
  • Basova TV, Kiselev VG, Plyashkevich VA, et al. Orientation and morphology of chloroaluminum phthalocyanine films grown by vapor deposition: electrical field-induced molecular alignment. Chem Phys. 2011;380:40–47.
  • Kayunkid N, Rangkasikorn A, Saributr C, et al. Growth and characterizations of tin doped zinc-phthalocyanine prepared by thermal co-evaporation in high vacuum as a nanomaterial. Jpn J Appl Phys. 2016;55:02BB12.
  • Li B, Noda Y, Hu L, et al. Highly efficient organic optoelectronic conversion induced by electric double layers in ionic liquids. Appl Phys Lett. 2012;100:163304.
  • Pfuetzner S, Meiss J, Petrich A, et al. Thick C60: ZnPcC60:ZnPc bulk heterojunction solar cells with improved performance by film deposition on heated substrates. Appl Phys Lett. 2009;94:253303.
  • Luciana GR, Cordeiro MR, Freitas AC, et al. The effects of temperature on the molecular orientation of zinc phthalocyanine films. J Mater Sci. 2010;45:1366–1370.
  • Seoudi R, El-Bahy GS, El Sayed ZA. FTIR, TGA and DC electrical conductivity studies of phthalocyanine and its complexes. J Mol Struct. 2005;753(1):119–126.
  • Socol N, Preda O, Rasoga C, et al. Flexible heterostructures based on metal phthalocyanines thin films obtained by MAPLE. Appl Surf Sci. 2016;374:403–410.
  • El-Nahass MM, Farag AM, Abd-El-Rahman MM, et al. Dispersion studies and electronic transitions in nickel phthalocyanine thin films. Opt Laser Technol. 2005;37:513–523.
  • Verma B, Parmer MS. NMR and IR studies of some metal complexes of 6-substituted-1-hydroxy- 1,2,3-benzotrizoles. Asian J Chem. 1994;6:22–25.
  • Hsiaoa S-H, Kung Y-R. Synthesis and properties of new aromatic polyimides containing redox-active anthraquinone moieties. Polym Int. 2013;62:573–580.
  • Qashoua SI, El-Zaidiab EFM, Darwishc AAA, et al. Methylsilicon phthalocyanine hydroxide doped PVA films for optoelectronic applications: FTIR spectroscopy, electrical conductivity, linear and nonlinear optical studies. Phys B Condens Matter. 2019;571:93–100.
  • Más-Montoya M Synthesis of new heteroarene systems and study of their properties as organic semiconductors for their application in molecular electronics [master’s thesis]. Murcia, Spain: Faculty of Chemistry, University of Murcia; 2015.
  • El-Nahass MM, Sallam MM, Ali HA. Optical properties of thermally evaporated metal-free phthalocyanine (H2Pc) thin films. Int J Modern Phys B. 2005;19:4057–4071.
  • El-Nahass MM, Abd-El-Rahman KF, Darwish AAA. Fourier-transform infrared and UV–vis spectroscopes of nickel phthalocyanine thin films. Mater Chem Phys. 2005;92:185–189.
  • Rajesh KR, Menon CS. Electrical and optical properties of vacuum-deposited organic semiconductor FePcCl thin films. Can J Phys. 2005;83:1151–1159.
  • Seoudi R, El-Bahy GS, El Sayed ZA. Ultraviolet and visible spectroscopic studies of phthalocyanine and its complexes thin films. Opt Mater. 2006;29(2–3):304–312.
  • Azim-Araghi ME, Krier A. Optical characterization of chloroaluminium phthalocyanine (ClAlPc) thin films. Pure Appl Opt J Eur Opt Soc. 1997;6:443–453.
  • Urbach F. The long-wavelength edge of photographic sensitivity and of the electronic absorption of solids. Phys Rev. 1953;92:1324.
  • Dongol M, El-Nahass MM, El-Denglawey A, et al. Optical properties of nano 5,10,15,20-Tetraphenyl-21H,23H-Prohyrin nickel (II) thin films. Curr Appl Phys. 2012;12:1178–1184.
  • Zeyada HM, El-Nahass MM, El-Zawawi IK, et al. Structural and optical properties of thermally evaporated 2-(2,3-dihydro-1,5-dimethyl-3-oxo-2-phenyl-1H-pyrazol-4-ylimino)-2-(4-nitrophenyl)acetonitrile thin films. J Phys Chem Solids. 2010;71:867–873.
  • Hagenmuller P. Chemical bonding and intercalation processes. Solid State Ion. 1990;40:3–9.
  • Kimura S, Okuno M, Iwata H, et al. Low-energy optical conductivity of Yb4As3. Phys B Condens Matter. 2002;312:356–358.
  • Ottaviano L, Di Nardo S, Lozzi L, et al. Thin and ultra-thin films of nickel phthalocyanine grown on highly oriented pyrolytic graphite: an XPS, UHV-AFM and air tapping-mode AFM study. Surf Sci. 1997;373:318–332.
  • Ludwig C, Strohmaier R, Petersen J, et al. Epitaxy and scanning tunneling microscopy image contrast of copper–phthalocyanine on graphite and MoS2. J Vac Sci Technol B. 1994;12:1963.
  • Sánchez Vergara ME, Medel V, Rios C, et al. Doping of molecular materials based on ferrocene and the study of their properties as organic semiconductors for their application in optoelectronic devices. J Mol Struct. 2019;1193:365–372.

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.