TGA results showed that the total weight loss percentage increase

TGA results showed that the total weight loss percentage increases as the temperature increases. Acknowledgements The authors greatly appreciate the financial support funded by the Ministry of Higher Education Malaysia through High Impact Research Grant (Grant No. HM.C/HIR/MOHE/ENG12). References 1. Vodnik VV, Vukovie JV, Nedeljkovic JM: Synthesis and characterization of silver-poly(methylmethacrylate) nanocomposites.

Colloid Polym Sci 2009, 287:847.CrossRef 2. Nicolais L, Carotenuto G: The thermolysis behavior of Ag/PAMAMs nanocomposites. Colloid Polym Sci 2009, 287:609.CrossRef 3. Longenberger L, Mills G: Formation of metal particles in aqueous solutions by reactions of metal complexes with polymers. J Phys Chem 1995, 99:475.CrossRef 4. Monti OLA, Fourkas JT, Nesbitt DJ: Ruboxistaurin nmr Diffraction-limited photogeneration and characterization of silver nanoparticles.

J Phys Chem B 2004, 108:1604.CrossRef 5. Deng Y, Sun Y, Wang P, Zhang D, Ming H, Zhang Q: Low-dimensional systems and nanostructures. Physica E 2008, 40:911.CrossRef 6. Sondi I, Goia DV, Matijevi E: Preparation of highly concentrated stable dispersions of uniform silver nanoparticles. J Colloid Interface Sci 2003, 260:75.CrossRef 7. Lim PY, Liu RS, She PL, Hung CF, Shih CH: Synthesis of Ag nanospheres particles in ethylene glycol by electrochemical-assisted polyol process. Chem Phys Lett 2006, 420:304.CrossRef 8. Che Lah NA, Johan MR: Optical and thermodynamic studies of silver nanoparticles stabilized by Daxad 19 surfactant. J Mater Res 2011, 3:340. 9. Che Lah NA, Johan Selleck MRT67307 MR: Facile shape control synthesis and optical properties of silver nanoparticles stabilized by Daxad 19 surfactant. Appl Surf Sci 2011, 257:7494.CrossRef 10. Singho ND, Che Lah NA, Johan MR, Ahmad R: FTIR studies on silver-poly(methylmethacrylate) nanocomposites via in-situ polymerization technique.

Int J Electrochem Sci 2012, 7:5596. 11. Kassaee MZ, Mohammadkhani M, Akhavan A, Mohammadi R: In situ formation of silver nanoparticles in PMMA via reduction of silver ions by butylated hydroxytoluene. Struct Chem 2011, 2:11.CrossRef 12. Khanna PK, Subbarao VVVS: Synthesis of fine CdS powder from direct in-situ reduction of sulphur Exoribonuclease and cadmium salts in aqueous N, N′-dimethylformamide. Mater Lett 2004, 58:2801.CrossRef 13. Hirai H: Formation and catalytic functionality of synthetic polymer-noble metal colloid. J Macromol Sci Pure Appl Chem 1979, 13:633.CrossRef 14. Fukuda S, Kawamoto S, Gotoh Y: Degradation of Ag and Ag-alloy mirrors sputtered on poly(ethylene terephthalate) substrates under visible light irradiation. Thin Solid Films 2003, 442:117.CrossRef 15. Herrero J, Guillén C: Transparent films on polymers for photovoltaic applications. {Selleck Anti-cancer Compound Library|Selleck Anticancer Compound Library|Selleck Anti-cancer Compound Library|Selleck Anticancer Compound Library|Selleckchem Anti-cancer Compound Library|Selleckchem Anticancer Compound Library|Selleckchem Anti-cancer Compound Library|Selleckchem Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|Anti-cancer Compound Library|Anticancer Compound Library|buy Anti-cancer Compound Library|Anti-cancer Compound Library ic50|Anti-cancer Compound Library price|Anti-cancer Compound Library cost|Anti-cancer Compound Library solubility dmso|Anti-cancer Compound Library purchase|Anti-cancer Compound Library manufacturer|Anti-cancer Compound Library research buy|Anti-cancer Compound Library order|Anti-cancer Compound Library mouse|Anti-cancer Compound Library chemical structure|Anti-cancer Compound Library mw|Anti-cancer Compound Library molecular weight|Anti-cancer Compound Library datasheet|Anti-cancer Compound Library supplier|Anti-cancer Compound Library in vitro|Anti-cancer Compound Library cell line|Anti-cancer Compound Library concentration|Anti-cancer Compound Library nmr|Anti-cancer Compound Library in vivo|Anti-cancer Compound Library clinical trial|Anti-cancer Compound Library cell assay|Anti-cancer Compound Library screening|Anti-cancer Compound Library high throughput|buy Anticancer Compound Library|Anticancer Compound Library ic50|Anticancer Compound Library price|Anticancer Compound Library cost|Anticancer Compound Library solubility dmso|Anticancer Compound Library purchase|Anticancer Compound Library manufacturer|Anticancer Compound Library research buy|Anticancer Compound Library order|Anticancer Compound Library chemical structure|Anticancer Compound Library datasheet|Anticancer Compound Library supplier|Anticancer Compound Library in vitro|Anticancer Compound Library cell line|Anticancer Compound Library concentration|Anticancer Compound Library clinical trial|Anticancer Compound Library cell assay|Anticancer Compound Library screening|Anticancer Compound Library high throughput|Anti-cancer Compound high throughput screening| Vacuum 2002, 67:611.CrossRef 16. Chowdhury J, Ghosh M: Concentration-dependent surface-enhanced Raman scattering of 2-benzoylpyridine adsorbed on colloidal silver particles.

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