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Journal of Environmental Science and Health, Part B
Pesticides, Food Contaminants, and Agricultural Wastes
Volume 52, 2017 - Issue 12
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Original Articles

Optimization and characterization of the formation of oil-in-water diazinon nanoemulsions: Modeling and influence of the oil phase, surfactant and sonication

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Pages 896-911 | Received 27 Apr 2017, Accepted 31 Jul 2017, Published online: 07 Nov 2017

References

  • Kah, M. Nanopesticides and nanofertilizers: emerging contaminants or opportunities for risk mitigation? Frontiers Chem. 2015, 3, 64.
  • Kah, M.; Beulke, S.; Tiede, K.; Hofmann, T. Nanopesticides: state of knowledge, environmental fate, and exposure modeling. Crit. Rev. Environ. Sci. Technol. 2013, 43, 1823–1867.
  • Damalas, C.A.; Eleftherohorinos, I.G. Pesticide exposure, safety issues, and risk assessment indicators. Int. J. Environ. Res. Public Health 2011, 8, 1402–1419.
  • Sarwar, M. The dangers of pesticides associated with public health and preventing of the risks. Int. J. Bioinformatics Biomed. Eng. 2015, 1, 130–136.
  • Ali, M.A.; Rehman, I.; Iqbal, A.; Din, S.; Rao, A.Q.; Latif, A.; Samiullah, T.R.; Azam, S.; Husnain, T. Nanotechnology, a new frontier in agriculture. Adv. Life Sci. 2014, 1, 129–138.
  • Pandey, S.; Giri, K.; Kumar, R.; Mishra, G.; Rishi, R.R. Nanopesticides: opportunities in crop protection and associated environmental risks. In Proceedings of the National Academy of Sciences, India Section B: Biological Sciences 2016, pp. 1–22.
  • Khot, L.R.; Sankaran, S.; Maja, J.M.; Ehsani, R.; Schuster, E.W. Applications of nanomaterials in agricultural production and crop protection: a review. Crop Prot. 2012, 35, 64–70.
  • Khan, M.R.; Rizvi, T.F. Nanotechnology: scope and application in plant disease management. Plant Pathology J. 2014, 13, 214–231.
  • Balaure, P.C.; Gudovan, D.; Gudovan, I. Nanopesticides: a new paradigm in crop protection. In: New pesticides and soil sensors, Grumezescu, A. M. (ed.). Academic Press: London, United Kingdom, Elsevier, 2017, 10, pp. 129.
  • Panpatte, D.G.; Jhala, Y.K.; Shelat, H.N.; Vyas, R.V. Nanoparticles: the next generation technology for sustainable agriculture. In Microbial Inoculants in Sustainable Agricultural Productivity, Singh, D.P., Singh, H.B., Prabha, R. (Eds.). Springer, 2016; pp. 289–300.
  • Sadurní, N.; Solans, C.; Azemar, N.; García-Celma, M.J. Studies on the formation of O/W nano-emulsions, by low-energy emulsification methods, suitable for pharmaceutical applications. Eur. J. Pharmaceutical Sci. 2005, 26, 438–445.
  • Persson, K.H.; Blute, I.A.; Mira, I.C.; Gustafsson, J. Creation of well-defined particle stabilized oil-in-water nanoemulsions. Colloids Surf. A: Physicochemical Eng. Asp. 2014, 459, 48–57.
  • Thiagarajan, P. Nanoemulsions for drug delivery through different routes. Res. Biotechnol. 2011, 2, 1–13.
  • Mason, T.; Graves, S.; Wilking, J.; Lin, M. Extreme emulsification: formation and structure of nanoemulsions. Condens. Matter Phys. 2006, 9, 193–199.
  • Patel, R.P.; Joshi, J.R. An overview on nanoemulsion: a novel approach. Int. J. Pharmaceutical Sci. Res. 2012, 3, 4640.
  • Koroleva, M.Y.; Yurtov, E.V.E. Nanoemulsions: the properties, methods of preparation and promising applications. Russ. Chem. Rev. 2012, 81, 21–43.
  • Chang, Y.; McClements, D.J. Optimization of orange oil nanoemulsion formation by isothermal low-energy methods: influence of the oil phase, surfactant, and temperature. J. Agric. Food Chem. 2014, 62, 2306–2312.
  • Gupta, A.; Eral, H.B.; Hatton, T.A.; Doyle, P.S. Nanoemulsions: formation, properties and applications. Soft Matter 2016, 12, 2826–2841.
  • Knowles, A. Recent developments of safer formulations of agrochemicals. The Environmentalist 2008, 28, 35–44.
  • McClements, D.J. Nanoemulsions versus microemulsions: terminology, differences, and similarities. Soft Matter 2012, 8, 1719–1729.
  • Chin, C.-P.; Lan, C.-W.; Wu, H.-S. Application of biodiesel as carrier for insecticide emulsifiable concentrate formulation. J. Taiwan Inst. Chem. Eng. 2012, 43, 578–584.
  • Du, Z.; Wang, C.; Tai, X.; Wang, G.; Liu, X. Optimization and characterization of biocompatible oil-in-water nanoemulsion for pesticide delivery. ACS Sustainable Chem. Eng. 2016, 4, 983–991.
  • Lim, C.J.; Basri, M.; Omar, D.; Rahman, M.B.A.; Salleh, A.B.; Rahman, R.N.Z.R.A. Physicochemical characterization and formation of glyphosate-laden nano-emulsion for herbicide formulation. Ind. Crops Prod. 2012, 36, 607–613.
  • Sugumar, S.; Clarke, S.; Nirmala, M.; Tyagi, B.; Mukherjee, A.; Chandrasekaran, N. Nanoemulsion of eucalyptus oil and its larvicidal activity against Culex quinquefasciatus. Bull. Entomological Res. 2014, 104, 393–402.
  • Anjali, C.; Sharma, Y.; Mukherjee, A.; Chandrasekaran, N. Neem oil (azadirachta indica) nanoemulsion–a potent larvicidal agent against Culex quinquefasciatus. Pest Manage. Sci. 2012, 68, 158–163.
  • Kadhim, D.H.; Abbas, H.A. Formulation and characterization of carvedilol nanoemulsion oral liquid dosage form. Int. J. Pharmacy Pharmaceutical Sci. 2015, 7, 209–216.
  • Tyagi, S.; Panda, A.; Khan, S. Formulation and evaluation of diclofenac diethyl amine microemulsion incorporated in hydrogel. World J. Pharmaceutical Res. 2012, 1, 23–39.
  • Taha, E.I.; Al-Saidan, S.; Samy, A.M.; Khan, M.A. Preparation and in vitro characterization of self-nanoemulsified drug delivery system (snedds) of all-trans-retinol acetate. Int. J Pharmaceutics 2004, 285, 109–119.
  • Shah, R.; Zidan, A.; Funck, T.; Tawakkul, M.; Nguyenpho, A.; Khan, M. Quality by design: characterization of self-nano-emulsified drug delivery systems (snedds) using ultrasonic resonator technology. Int. J. Pharmaceutics 2007, 341, 189–194.
  • Dias, D.; Colombo, M.; Kelmann, R.G.; De Souza, T.P.; Bassani, V.L.; Teixeira, H.F.; Veiga, V.F.; Limberger, R.P.; Koester, L.S. Optimization of headspace solid-phase microextraction for analysis of β-caryophyllene in a nanoemulsion dosage form prepared with copaiba (copaifera multijuga hayne) oil. Anal. Chim. Acta 2012, 721, 79–84.
  • Henry, J.V.; Fryer, P.J.; Frith, W.J.; Norton, I.T. Emulsification mechanism and storage instabilities of hydrocarbon-in-water sub-micron emulsions stabilised with tweens (20 and 80), brij 96v and sucrose monoesters. J. Colloid Interface Sci. 2009, 338, 201–206.
  • Ghosh, V.; Mukherjee, A.; Chandrasekaran, N. Ultrasonic emulsification of food-grade nanoemulsion formulation and evaluation of its bactericidal activity. Ultrason. Sonochemistry 2013, 20, 338–344.
  • Tadros, T.; Izquierdo, P.; Esquena, J.; Solans, C. Formation and stability of nano-emulsions. Adv. Colloid Interface Sci. 2004, 108, 303–318.
  • Taylor, P. Ostwald ripening in emulsions: estimation of solution thermodynamics of the disperse phase. Adv. Colloid Interface Sci. 2003, 106, 261–285.
  • Liu, W.; Sun, D.; Li, C.; Liu, Q.; Xu, J. Formation and stability of paraffin oil-in-water nano-emulsions prepared by the emulsion inversion point method. J. Colloid Interface Sci. 2006, 303, 557–563.
  • Lifshitz, I.M.; Slyozov, V.V. The kinetics of precipitation from supersaturated solid solutions. J. Phys. Chem. Solids 1961, 19, 35–50.
  • El-Aasser, M.S.; Sudol, E.D. Miniemulsions: overview of research and applications. JCT Res. 2004, 1, 21–32.
  • Solans, C.; Kunieda, H. Industrial Applications of Microemulsions. CRC Press: Madison Avenue, New York, 1996; 66.
  • Benita, S. Submicron Emulsions in Drug Targeting and Delivery. CRC Press: Madison Avenue, New York, 1998; 9.
  • Tang, S.Y.; Shridharan, P.; Sivakumar, M. Impact of process parameters in the generation of novel aspirin nanoemulsions–comparative studies between ultrasound cavitation and microfluidizer. Ultrason. Sonochemistry 2013, 20, 485–497.
  • Nishitani Yukuyama, M.; Tomiko Myiake Kato, E.; Lobenberg, R.; Araci Bou-Chacra, N. Challenges and future prospects of nanoemulsion as a drug delivery system. Curr. Pharmaceutical Des. 2017, 23, 495–508.
  • Oh, D.H.; Balakrishnan, P.; Oh, Y.-K.; Kim, D.-D.; Yong, C.S.; Choi, H.-G. Effect of process parameters on nanoemulsion droplet size and distribution in SPG membrane emulsification. Int. J. Pharmaceutics 2011, 404, 191–197.
  • Forgiarini, A.; Esquena, J.; Gonzalez, C.; Solans, C. Formation of nano-emulsions by low-energy emulsification methods at constant temperature. Langmuir 2001, 17, 2076–2083.
  • Setya, S.; Talegaonkar, S.; Razdan, B. Nanoemulsions: formulation methods and stability aspects. World J. Pharm. Pharm. Sci. 2014, 3, 2214.
  • McClements, D.J. Crystals and crystallization in oil-in-water emulsions: implications for emulsion-based delivery systems. Adv. Colloid Interface Sci. 2012, 174, 1–30.
  • Kentish, S.; Wooster, T.; Ashokkumar, M.; Balachandran, S.; Mawson, R.; Simons, L. The use of ultrasonics for nanoemulsion preparation. Innovative Food Sci. Emerging Technol. 2008, 9, 170–175.
  • Baboota, S.; Shakeel, F.; Ahuja, A.; Ali, J.; Shafiq, S. Design, development and evaluation of novel nanoemulsion formulations for transdermal potential of Celecoxib. Acta Pharmaceutica 2007, 57, 315–332.
  • Aghajani, M.; Shahverdi, A.R.; Amani, A. The use of artificial neural networks for optimizing polydispersity index (PDI) in nanoprecipitation process of acetaminophen in microfluidic devices. AAPS Pharm. Sci. Tech. 2012, 13, 1293–1301.
  • Silvander, M.; Hellström, A.; Wärnheim, T.; Claesson, P. Rheological properties of phospholipid-stabilized parenteral oil-in-water emulsions–effects of electrolyte concentration and presence of heparin. Int. J. Pharmaceutics 2003, 252, 123–132.
  • Pal, R. Pipeline flow of unstable and surfactant stabilized emulsions. AIChE J. 1993, 39, 1754–1764.
  • Some, I.T.; Bogaerts, P.; Hanus, R.; Hanocq, M.; Dubois, J. Improved kinetic parameter estimation in ph-profile data treatment. Int. J. Pharmaceutics 2000, 198, 39–49.
  • Moustafa, H.Z.; Mohamad, T.G.; Torkey, H. Effect of formulated nanoemulsion of eucalyptus oil on the cotton bollworms. J. Biol. Chem. Res. 2015, 32, 478–484.

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