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Fabrication of chemical sensor for organochlorine pesticide detection using colloidal gold nanoparticles

Published online by Cambridge University Press:  16 July 2018

Puja Goel*
Affiliation:
Physics Department, College of Basic Sciences and Humanities, G.B. Pant University of Agriculture and Technology, Pantnagar, 263145, India
Manju Arora
Affiliation:
CSIR-National Physical Laboratory, Dr. K.S. Krishnan Marg, New Delhi, 110012, India
*
Address all correspondence to Puja Goel at pujagoel@gmail.com
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Abstract

Gold nanoparticles (GNPs) of ~8 nm in diameter were used for the detection of organochlorine endosulfan pesticide (ESP) as colorimetric sensor and the design of GNP-based chemical sensor for its quantitative estimation has also been proposed. The original wine red color of GNPs changes into various shades of blue after the addition of different concentrations of ESP solutions. A GNP-based sensing electrode has been used for designing of ESP detection chemical sensor at ambient temperature. The response and sensitivity of ESP sensor parameters are obtained from their recovery curves of the change in resistance versus time.

Type
Research Letters
Copyright
Copyright © Materials Research Society 2018 

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References

1.Drexler, K.E.: Engines of Creation: The Coming Era of Nanotechnology (Anchor Books, New York, 1986).Google Scholar
2.Drexler, K. E.: Nanosystems: Molecular Machinery, Manufacturing, and Computation (John Wiley & Sons, New York, 1992).Google Scholar
3.Saini, R., Saini, S., and Sharma, S.: Nanotechnology: the future medicine. J. Cutan. Aesthet. Surg. 3, 32 (2010).Google Scholar
4.Allhoff, F., Lin, P., and Moore, D.: What is Nanotechnology and Why Does it Matter?: From Science to Ethics (John Wiley and Sons, Oxford, 2010), pp. 35.Google Scholar
5.Prasad, S.K.: Modern Concepts in Nanotechnology (Discovery Publishing House, Delhi, 2008) pp. 3132.Google Scholar
6.Nafiseh, F.K. and Nezhad, M.R.H.: Gold-nanoparticle-based colorimetric sensor array for discrimination of organophosphate pesticides. Anal. Chem. 88, 8099 (2016).Google Scholar
7.Krishnendu, S., Sarit, S.A., Chaekyu, K., Xiaoning, L., and Vincent, M.R.: Gold nanoparticles in chemical and biological sensing. Chem. Rev. 112, 2739 (2012).Google Scholar
8.Suriyapha, J.K., Khwankhao, P., Natvara, B., and Siriwan, T.: Gold nanoparticles-based colorimetric sensor for cysteine detection. Energy Procedia 56, 10 (2014).Google Scholar
9.Stefania, M., Giovanna, S., Fabio, B., Pier, P.R., and Gian, F.G.: Advances of nanotechnology in agro-environmental studies. Ital. J. Agron. 8, 127 (2013).Google Scholar
10.Youngjin, K., Robert, C.J., and Joseph, T.H.: Gold nanoparticle-based sensing of “spectroscopically silent”. Heavy metal ions. Nano Lett. 1, 165 (2001).Google Scholar
11.Acosta, E.: Bioavailability of NPs in nutrient and nutraceutical delivery. Curr. Opin. Colloid Interface Sci. 14, 3 (2009).Google Scholar
12.Balaji, T., El-Safty, S.A., Matsunaga, H., Hanaoka, T., and Mizukami, F.: Optical Sensors based on nanostructured cage materials for the detection of toxic metal ions. Angew. Chem. 45, 7202 (2006).Google Scholar
13.Baruah, S. and Dutta, J.: Nanotechnology applications in pollution sensing and degradation in agriculture: a review. Environ. Chem. Lett. 7, 191 (2009).Google Scholar
14.Ben-Moshe, T.: Transport of metal oxide nanoparticles in saturated porous media. Chemosphere. 81, 387 (2010).Google Scholar
15.Nair, A.S., Renjis, T.T., and Pradeep, T.: Detection and extraction of endosulfan by metal nanoparticles. J. Environ. Monit. 5, 363 (2003).Google Scholar
16.Dreher, K.L.: Health and environmental impact of nanotechnology: toxicological assessment of manufactured nanoparticles. Toxicol. Sci. 77, 3 (2004).Google Scholar
17.Nair, A.S. and Pradeep, T.: Halocarbon mineralization and catalytic destruction by metal nanoparticles. Curr. Sci. 84, 1560 (2003).Google Scholar
18.Tian, X., Michael, K., Jonathan, B., Matt, H., Joan, S., Terry, O., Constantinos, S., Joanne, I.Y., Mark, R.W., and Andre, E.N.: Comparison of the abilities of ambient and manufactured nanoparticles to induce cellular toxicity according to an oxidative stress paradigm. Nano Lett. 6, 1794 (2006).Google Scholar
19.Bootharaju, M.S. and Pradeep, T.: Understanding the degradation pathway of the pesticide, chlorpyrifos by noble metal nanoparticles. Langmuir 28, 2671 (2012).Google Scholar
20.Weng, Z., Wang, H., Vongsvivut, J., Li, R., Glushenkov, A.M., He, J., Chen, Y., Barrow, C.J., and Yang, W.: Self-assembly of core-satellite gold nanoparticles for colorimetric detection of copper ions. Anal. Chim. Acta. 803, 128 (2013).Google Scholar
21.Rosi, N.L. and Mirkin, C.A.: Nanostructures in biodiagnostics. Chem. Rev. 105, 1547 (2005).Google Scholar
22.Husen, A.: Recent advances in plant-mediated engineered gold nanoparticles and their application in biological system. J. Trace Elem. Med. Biol. 40, 10 (2017).Google Scholar
23.Dykman, L., and Khlebtsov, N.: Gold nanoparticles in biomedical applications: recent advances and perspectives. Chem. Soc. Rev. 41, 2256 (2012).Google Scholar
24.Cai, W., Gao, T., Hong, H., and Sun, J.: Applications of gold nanoparticles in cancer nanotechnology. Nanotechnol., Sci. Appl. 10, 17 (2008).Google Scholar
25.Robert, E., James, J.S., Robert, C.M., Robert, L.L., and Chad, A.M.: Selective colorimetric detection of polynucleotides based on the distance-dependent optical properties of gold nanoparticles. Science 277, 1078 (1997).Google Scholar
26.Goel, P., Arora, M., and Biradar, A.M.: Mechanism of photoluminescence enhancement and quenching in Nd2O3 nanoparticles–ferroelectric liquid crystal nanocomposites. RSC Adv. 5, 14974 (2015).Google Scholar
27.Anguita, J.V., Silva, S.R.P., Burden, A.P., Sealy, B.J., Haq, S., Hebbron, M., Sturland, I., and Pritchard, A.: Thermal stability of plasma deposited thin films of hydrogenated carbon–nitrogen alloys. J. App. Phys. 86, 6276 (1999).Google Scholar
28.Dischler, B., Bubenzer, A., and Koidl, P.: Bonding in hydrogenated hard carbon studied by optical spectroscopy. Solid State Commun. 48, 105 (1983).Google Scholar
29.Li, Z., Yang, Z., and Xiao, R.: Visible photoluminescence from hydrogenated amorphous carbon films prepared by pulsed laser ablation of polymethyl methacrylate (PMMA). Appl. Phys. A: Mater. Sci. Process. 63, 243 (1996).Google Scholar
30.Stief, R., Schafer, J., Ristein, J., Ley, L., and Beyer, W.: Hydrogen bonding analysis in amorphous hydrogenated carbon by a combination of infrared absorption and thermal effusion experiments. J. Non-Cryst. Solids 198, 636 (1996).Google Scholar
31.Kang, D. H., Ha, S.C., Kim, K.B., and Min, S.K.: Evaluation of the ion bombardment energy for growing diamondlike carbon films in an electron cyclotron resonance plasma enhanced chemical vapor deposition. J. Vac. Sci. Technol., A 16, 2625 (1998).Google Scholar
32.Oxtoby, A., and Nachtrieb, N.: Principles of Modern Chemistry (CBS College Publishing, Philadelphia, 1986).Google Scholar
33.Daskal, Y., Dittrich, R., Walter, J., and Joseph, Y.: Chemiresistor sensors based on gold nanoparticle composites. Procedia Eng. 120, 799 (2015).Google Scholar