Microwave-assisted rapid synthesis of alumina nanoparticles using tea, coffee and triphala extracts

Prasant Sutradhar , Narayan Debnath , Mitali Saha

Advances in Manufacturing ›› 2013, Vol. 1 ›› Issue (4) : 357 -361.

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Advances in Manufacturing ›› 2013, Vol. 1 ›› Issue (4) : 357 -361. DOI: 10.1007/s40436-013-0043-0
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Microwave-assisted rapid synthesis of alumina nanoparticles using tea, coffee and triphala extracts

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Abstract

Alumina nanoparticles (AlNP) were synthesized from aluminium nitrate using extracts of tea, coffee and triphala—a well known herbal plant as well as a non-toxic and eco—friendly green material. The synthesis was carried out taking 1:4 ratio of metal salt and these extracts under microwave irradiations at 540 W, which gave better yield of nanoparticles. Water was taken as solvent medium. The formations of AlNP were initially monitored by the colour changes occurring in the reaction mixture during the incubation period. As synthesized nanoparticles were characterized by scanning electron microscope (SEM), UV–Visible (UV–Vis) spectroscopy and Fourier transform infrared spectroscopy (FTIR). The AlNP were found to be spherical in shape in case of tea and coffee extracts with a size of 50–200 nm and to be oval shaped in case of triphala extract with an average size of 200–400 nm. The formation of AlNP with the microwave-assistance using these plant extracts has proved to be very faster than any other methods. In addition, excellent reproducibility of these nanoparticles, without the use of any additional capping agent or stabilizer will have great advantages in comparison with microbial synthesis, avoiding all the tedious and hygienic complications.

Keywords

Alumina nanoparticles / Microwave / Tea / Coffee / Triphala

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Prasant Sutradhar, Narayan Debnath, Mitali Saha. Microwave-assisted rapid synthesis of alumina nanoparticles using tea, coffee and triphala extracts. Advances in Manufacturing, 2013, 1(4): 357-361 DOI:10.1007/s40436-013-0043-0

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References

[1]

Dillon AC, Mahan AH, Deshpande R, et al. Metal oxide nano-particles forimproved electrochromic and lithium-ion battery technologies. Thin Solid Films, 2008, 516: 794-797.

[2]

Lach R, Haberko K, Bu′cko MM, et al. Ceramic matrix composites in the alumina/5–30 vol% YAG system. J Eur Ceram Soc, 2011, 31: 1889-1895.

[3]

Lee CL, Wan CC, Wang YY, et al. Synthesis of silver nanoparticles using hydroxyl functionalized ionic liquids and their antimicrobial activity. Adv Funct Mater, 2001, 11: 344-347.

[4]

Wei S, Wang Q, Zhu J, et al. Alumina nanoparticles related composites application: surface functionalized alumina nanoparticle filled polymeric nanocomposite with enhanced mechanical properties. J Mater Chem, 2006, 16: 2800-2808.

[5]

Guoa Z, Kumar CSSR, Henry LL, et al. Displacement synthesis of Cu shells surrounding Co nanoparticles. J Electrochem Soc, 2005, 152(1): D1-D5.

[6]

Capek I. Preparation of metal nanoparticles in water-in-oil (w/o) microemulsions. Adv Colloid Interface Sci, 2004, 110: 49-74.

[7]

Yin BS, Ma HY, Wang SY, et al. Electrochemical synthesis of silver nanoparticles under protection of poly(N-vinylpyrrolidone). J Phys Chem B, 2003, 107: 8898-8904.

[8]

Murphy CJ, San TK, Gole AM, et al. Anisotropic metal nanoparticles: synthesis, assembly, and optical applications. J Phys Chem B, 2005, 109: 13857-13870.

[9]

Kumar SS, Manav S, Mitali S, et al. Carbon nanocubes and nanobricks from pyrolysis of rice. J Nanosci Nanotechnol, 2010, 10: 4064-4067.

[10]

Mitali S, Soma D. Electrochemical studies of carbon nanotube obtained from coconut oil as non enzymatic glucose biosensor. Adv Sci Eng Med, 2013, 5: 645-648.

[11]

Soma D, Mitali S. Preparation of carbon nanosphere from bamboo and its use in water purification. Curr Trends Technol Sci, 2012, 2: 174-177.

[12]

Chandran SP, Chaudhary M, Pasricha R, et al. Synthesis of gold nanotriangles and silver nanoparticles using aloe vera plant extract. Biotechnol Prog, 2006, 22: 577-583.

[13]

Moulton MC, Braydich-Stolle LK, Nadagouda MN, et al. Synthesis, characterization and biocompatibility green synthesized silver nanoparticles using tea polyphenols. Nanoscale, 2010, 2: 763-770.

[14]

Nadagouda MN, Varma RS. Green and controlled Synthesis of gold and platinum nanomaterials using vitamin B2: density-assisted self-assembly of nanospheres, wires and rods. Green Chem, 2006, 8: 516-518.

[15]

Yang Xin, Qingbiao Li, Wang Huixuan, et al. Green synthesis of palladium nanoparticles using broth of Cinnamomum camphora leaf. J Nanopart Res, 2010, 12: 1589-1598.

[16]

Luki′c I, Krsti′c J, Jovanovi′c D, et al. Alumina/silica supported K2CO3 as a catalyst for biodiesel synthesis from sunflower oil. Bioresour Technol, 2009, 100: 4690-4696.

[17]

Keyvani A, Saremi M, HeydarzadehSohi M. Microstructural stability of zirconia–alumina composite coatingsduring hot corrosion test at 1050 °C. J Alloys Compd, 2010, 506: 103-108.

[18]

Liu IL, Shen P, Chen SY. H+- and Al2+-codoped Al2O3 nanoparticles with spinel- type related structures by pulsed laser ablation in water. J Phys Chem C, 2010, 114: 7751-7757.

[19]

Monica D, Soma D, Mitali S. Effect of reducing agents on the structure of zinc oxide under microwave irradiation. Adv Manuf, 2013, 1: 183-186.

[20]

Surati MA, Smita J, Desai KR. A brief review: microwave assisted organic reaction. Arch Appl Sci Res, 2012, 4(2): 645-661.

[21]

Kamat PV. Photophysical, photochemical and photocatalytic aspects of metal nanoparticles. J Phys Chem B, 2002, 106(32): 7729-7744.

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