全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Structural Characterizations for Glass Ionomer Cement Doped with Transition Metal Phthalocyanines

DOI: 10.4236/njgc.2019.94006, PP. 67-79

Keywords: Cerium Phosphate, Metal Phthalocyanine, Bundles Phases, 31P NMR Spectros-copy

Full-Text   Cite this paper   Add to My Lib

Abstract:

Glass and Glass iomomer cement (GICs) based on a specific composition of cerium phosphate glass (40 CeO2-60P2O5) have been prepared. Effect of the doping type at a fixed doping concentration from metal-phthalocyanines (M-PCs) on material structure and morphologies has been carefully studied. The corresponding changes in the material structure were widely followed up by?31P MAS NMR, X-Ray diffraction and FTIR spectroscopy. The network structure of both base glass and GIC which all free from metal phthalocyanines has been confirmed to be amorphous. GIC doped with M-PCs has shown a more ordered structure. There were clear changes in the position and intensities of?31P NMR spectral peaks of glasses upon changing the dopant type. In all cases, a little concentration from M-Phthalocyanine (0.8 mol%) leads to changing the network structure from amorphous to a more ordered structure. Phosphate structural phases are evidenced to be formed upon addition of a fixed amount of M-PCs (Ga, Co, Fe). The morphologies of some selected samples were characterized by SEM. The micrographs have revealed that formulating of cerium phosphate powder of the amorphous glass with a polymeric acid successfully led to the formation of CePO4-H2O bundles phases. But formulation with GIC containing Co or Fe or Ga Phthalocyanine can simply form co-aligned linear slaps and elongated nanofibers which are consisted of hydrated and carbonated CePO

References

[1]  Hong, Z.R., Liang, C.J., Sun, X.Y. and Zeng, X.T. (2006) Characterization of Organic Photovoltaic Devices with Indium-Tin-Oxide Anode Treated by Plasma in Various Gases. Journal of Applied Physics, 100, Article ID: 093711.
[2]  Park, Y.G., Kanki, T., Lee, H.Y., Tanaka, H. and Kawai, T. (2003) CuPc/PbZr0.2 Ti0.8O3/(La,Ba)MnO3 Field Effect Transistor Heterojunction Photomemory. Solid- State Electronics, 47, 2221-2224.
[3]  Heavens, O.S. (1991) Optical Properties of Thin Solid Films. Dover Publications, New York, 103.
[4]  Karan, S., Basak, D. and Mallik, B. (2010) Persistence in Photoconductivity and Optical Property of Nanostructured Copper (II) Phthalocyanine Thin Films. Current Applied Physics, 10, 1117-1122.
[5]  Heutz, S., Sullivan, P., Sanderson, B.M., Schultes, S.M. and Jones, T.S. (2007) Molecular Thin Films for Optoelectronic Applications. Solid State Phenomena, 121-123, 373-376.
https://doi.org/10.4028/www.scientific.net/SSP.121-123.373
[6]  Kilinc, N., Atilla, D., Gürek, A.G., Oztürka, Z.Z. and Ahsen, V. (2009) Tetrakis (Alkylthio)-Substituted Lutetium Bisphthalocyanines for Sensing NO2 and O3. Sensors and Actuators B: Chemical, 142, 73-81.
https://doi.org/10.1016/j.snb.2009.07.015
[7]  Armstrong, N.R. (2000) Phthalocyanines and Porphyrins as Materials. Journal of Porphyrins and Phthalocyanines, 4, 414-417.
https://doi.org/10.1002/(SICI)1099-1409(200006/07)4:4<414::AID-JPP247>3.0.CO;2-B
[8]  Lim, C.K., Shin, J., Lee, Y.D., Kim, J., Oh, K.S., Yuk, S.H., Jeong, S.Y., Kwon, I.C. and Kim, S. (2012) Phthalocyanine-Aggregated Polymeric Nanoparticles as Tumor-Homing Near-Infrared Absorbers for Photothermal Therapy of Cancer. Theranostics, 2, 871-879.
https://doi.org/10.7150/thno.4133
[9]  Dolmans, D.E., Fukumura, D. and Jain, R.K. (2003) Photodynamic Therapy for Cancer. Nature Reviews Cancer, 3, 380-387.
https://doi.org/10.1038/nrc1071
[10]  Baptista, M.S. and Wainwright, M. (2011) Photodynamic Antimicrobial Chemotherapy (PACT) for the Treatment of Malaria, Leishmaniasis and Trypanosomiasis. Brazilian Journal of Medical and Biological Research, 44, 1-10.
https://doi.org/10.1590/S0100-879X2010007500141
[11]  Dutta, D.P. and Jai, V.K. (2000) Synthesis and Characterization of Phosphinic and Phosphate Complexes of Gallium(III) and Indium(III). Phosphorus, Sulfur, and Silicon and the Related Elements, 166, 15-26.
https://doi.org/10.1080/10426500008076528
[12]  Brow, R.K. (2000) Review: The Structure of Simple Phosphate Glasses. Journal of Non-Crystalline Solids, 263-264, 1-28.
https://doi.org/10.1016/S0022-3093(99)00620-1
[13]  El-Damrawi, G., Hassan, A., Doweidar, H. and Shaboub, A. (2017) Structural Studies on Ag2O-P2O5 Glasses. New Journal of Glass and Ceramics, 7, 77-89.
https://doi.org/10.4236/njgc.2017.73007
[14]  El Damrawi, G., Behairy, A. and Abdelgany, A.M. (2018) Structural Characterization of Novel Cerium Phosphate Glass Ionomer Cements (GICs) Doped with GaCl (Phthalocyanine). New Journal of Glass and Ceramics, 8, 23-38.
https://doi.org/10.4236/njgc.2018.82003
[15]  Sidhu, S.K. and Nicholson, J.W. (2016) A Review of Glass-Ionomer Cements for Clinical Dentistry. Journal of Functional Biomaterials, 7, 16.
https://doi.org/10.3390/jfb7030016
[16]  Shahid, S., Hassan, U., Billington, R.W., Hill, R.G. and Anderson, P. (2014) Glass Ionomer Cements: Effect of Strontium Substitution on Esthetics, Radiopacity and Fluoride Release. Dental Materials, 30, 308-313.
[17]  Engqvist, H., Schultz-Walz, J.E., et al. (2004) Chemical and Biological Integration of a Mouldable Bioactive Ceramic Material Capable of Forming Apatite in Vivo in Teeth. Biomaterials, 25, 2781-2787.
https://doi.org/10.1016/j.biomaterials.2003.09.053
[18]  Liao, M.S. and Scheiner, S. (2001) Electronic Structure and Bonding in Metal Phthalocyanines, Metal = Fe, Co, Ni, Cu, Zn, Mg. The Journal of Chemical Physics, 114, 9780.
https://doi.org/10.1063/1.1367374
[19]  Ozaki, H. and Harada, Y. (1990) Penning Ionization Electron Spectroscopy of Iron Phthalocyanine Thin Films. Study of Electronic Structure from Local Electron Distribution of Molecular Orbitals. The Journal of Chemical Physics, 92, 3184.
https://doi.org/10.1063/1.457915
[20]  Orti, E. and Brédas, J.L. (1992) Photoelectron Spectra of Phthalocyanine Thin Films: A Valence Band Theoretical Interpretation. Journal of the American Chemical Society, 114, 8669-8675.
https://doi.org/10.1021/ja00048a046
[21]  El Damrawi, G., Hassan, A.K. and Shaboub, A. (2018) 31P and 27Al Nuclear Magnetic Resonance Studies on Silver Phosphate Glasses. Magnetic Resonance in Solids, 20, 18202.
[22]  Song, J.L. and Wang, X.J. (2016) Crystal Structure of Mixed-Metal Phosphite, Pb2Ga(HPIIIO3)3(PVO3). Structural Chemistry and Crystallography Communication, 2, 1.
[23]  Wu, D.S., Cheng, W.D., Li, X.D., Lan, Y.Z., Chen, D.G., Zhang, Y., Zhang, H. and Gong, Y.J. (2004) First Principles Treatment of Configuration Optimizations, Excited-State Properties, and Dynamic Third-Order Polarizabilities of Chloro-Metal Phthalocyanines MPcCl (M = Al, Ga, In). The Journal of Physical Chemistry A, 108, 1837-1843.
https://doi.org/10.1021/jp0365211
[24]  Kadish, K.M., Smith, K.M. and Guilard, R. (2003) The Porphyrin Handbook, Volumes 15-20. Academic Press, San Diego, CA.
[25]  Heinemann, S., Heinemann, C., Jager, M., Neunzehn, J., Wiesmann, H.P. and Hanke, T. (2011) Effect of Silica and Hydroxyapatite Mineralization on the Mechanical Properties and the Biocompatibility of Nanocomposite Collagen Scaffolds. ACS Applied Materials & Interfaces, 3, 323-4331.
https://doi.org/10.1021/am200993q
[26]  Miravet, J.F. and Escuder, B. (2005) Reactive Organogels: Self-Assembled Support for Functional Materials. Organic Letters, 7, 4791-4794.
https://doi.org/10.1021/ol0514045
[27]  Roy, G., Miravet, J.F., Escuder, B., Sanchez, C. and Llusar, M. (2006) Morphology Templating of Nanofibrous Silica through pH-Sensitive Gels: “In Situ” and “Post-Diffusion” Strategies. Journal of Materials Chemistry, 16, 1817-1824.
https://doi.org/10.1039/B601561A
[28]  Suzuki, M., Nakajima, Y., Sato, T., Shirai, H. and Hanabusa, K. (2006) Fabrication of TiO2 Using L-Lysine-Based Organogelators as Organic Templates: Control of the Nanostructures. Chemical Communications, 20, 377-379.
https://doi.org/10.1039/B510302A

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133

WeChat 1538708413