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[1] Zhang Xiaoqiang, Yin Lihong, Pu Yuepu,. Comparison of dispersion of nanoparticles ultrasonicatedwith probe and cup horn [J]. Journal of Southeast University (English Edition), 2011, 27 (4): 441-444. [doi:10.3969/j.issn.1003-7985.2011.04.018]
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Comparison of dispersion of nanoparticles ultrasonicatedwith probe and cup horn()
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Journal of Southeast University (English Edition)[ISSN:1003-7985/CN:32-1325/N]

Volumn:
27
Issue:
2011 4
Page:
441-444
Research Field:
Materials Sciences and Engineering
Publishing date:
2011-12-31

Info

Title:
Comparison of dispersion of nanoparticles ultrasonicatedwith probe and cup horn
Author(s):
Zhang Xiaoqiang Yin Lihong Pu Yuepu
School of Public Health, Southeast University, Nanjing 210009, China
Key Laboratory of Environmental Medicine and Engineering of Ministry of Education, Southeast University, Nanjing 210009, China
Keywords:
nanoparticles dispersion ultrasonic devices
PACS:
TB383
DOI:
10.3969/j.issn.1003-7985.2011.04.018
Abstract:
This study aims to investigate the effects of a probe and a cup horn on the de-agglomeration efficiency in ultrasound vibration processes. TiO2 and Al2O3 nanoparticle dispersions were prepared in distilled water at a concentration of 50.0 mg/mL followed by treatment with a dispersion stabilizer(100% FBS)and ultrasound vibration at 20 kHz and 35% amplitude for 10 min by a probe and a cup horn, respectively. The average sizes of dispersed TiO2 and Al2O3 nanoparticles were measured by a dynamic light scattering device. Compared to dispersion with the probe sonicating, the average sizes of TiO2 and Al2O3 particles sonicated by the cup horn are markedly smaller at time points of 30, 60, 120, and 180 min. The TiO2 and Al2O3 particle size distributions of cup horn-treated suspensions were narrower than those of probe-treated suspensions at time points of 120 and 180 min. It is suggested that the cup horn has a higher efficiency than the probe in dispersing nanoparticles. The cup horn is better than the probe for processing multiple small sample vessels simultaneously. Indirect cup horn sonication is ideal for processing pathogenic and sterile samples.

References:

[1] Oberdörster G, Oberdörster E, Oberdörster J. Nanotoxicology: an emerging discipline evolving from studies of ultrafine particles[J]. Environ Health Perspect, 2005, 113(7):823-839.
[2] Sinha V, Trehan A. Biodegradable microspheres for protein delivery[J]. J Control Release, 2003, 90(3):261-280.
[3] Wu Y, Yang W, Wang C, et al. Chitosan nanoparticles as a novel delivery system for ammonium glycyrrhizinate[J]. Int J Pharm, 2005, 295(1/2):235-245.
[4] Pinna N, Neri G, Antonietti M, et al. Nonaqueous synthesis of nanocrystalline semiconducting metal oxides for gas sensing[J]. Angew Chem Int Ed Engl, 2004, 43(33): 4345-4349.
[5] Jwo C S, Chang H, Kao M J, et al. Photodecomposition of volatile organic compounds using TiO2 nanoparticles[J]. J Nanosci Nanotechnol, 2007, 7(6):1947-1952.
[6] Ahmed I S, Dessouki H A, Ali A A. Synthesis and characterization of new nano-particles as blue ceramic pigment[J]. Spectrochim Acta A Mol Biomol Spectrosc, 2008, 71(2):616-620.
[7] Jayakumar O D, Sasikala R, Betty C A, et al. A rapid method for the synthesis of nitrogen doped TiO2 nanoparticles for photocatalytic hydrogen generation[J]. J Nanosci Nanotechnol, 2009, 9(8):4663-4667.
[8] Yu W, Xie H, Bao D. Enhanced thermal conductivities of nanofluids containing graphene oxide nanosheets[J]. Nanotechnology, 2009, 21(5):055705.
[9] Lam C W, James J T, McCluskey R, et al. Pulmonary toxicity of single-wall carbon nanotubes in mice 7 and 90 days after intratracheal instillation[J]. Toxicol Sci, 2004, 77(1):126-134.
[10] Deguchi S, Yamazaki T, Mukai S A, et al. Stabilization of C60 nanoparticles by protein adsorption and its implications for toxicity studies[J]. Chem Res Toxicol, 2007, 20(6):854-858.
[11] Wang J, Zhou G, Chen C, et al. Acute toxicity and biodistribution of different sized titanium dioxide particles in mice after oral administration[J]. Toxicol Lett, 2007, 168(2):176-185.
[12] Suslick K S. Sonochemistry[J]. Science, 1990, 247(4949):1439-1445.
[13] Zhang X, Yin L, Tang M, et al. Optimized method for preparation of TiO2 nanoparticles dispersion for biological study[J]. J Nanosci Nanotechnol, 2010, 10(8):5213-5219.

Memo

Memo:
Biographies: Zhang Xiaoqiang(1968—), male, doctor, associate professor; Pu Yuepu(corresponding author), male, professor, yppu@seu.edu.cn.
Foundation items: The National Basic Research Program of China(No.2011CB933404), the Foundation of Jiangsu Key Laboratory for Biomaterials and Devices(No.2010LBMD05).
Citation: Zhang Xiaoqiang, Yin Lihong, Pu Yuepu.Comparison of dispersion of nanoparticles ultrasonicated with probe and cup horn[J].Journal of Southeast University(English Edition), 2011, 27(4):441-444.[doi:10.3969/j.issn.1003-7985.2011.04.018]
Last Update: 2011-12-20