Skip to main content
Erschienen in: Journal of Electronic Materials 6/2021

14.04.2021 | Original Research Article

Functionalization of Silver Nanoparticles with Carbohydrate Derivative for Colorimetric Assay of Thiram

verfasst von: Vishal Dhavle, Mehul R. Kateshiya, Tae-Jung Park, Suresh Kumar Kailasa

Erschienen in: Journal of Electronic Materials | Ausgabe 6/2021

Einloggen

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

The surface of silver nanoparticles (Ag NPs) was functionalized with a carbohydrate derivative (glutathione-lactose, GSH-Lac) to form GSH-Lac-Ag NPs for sensing of thiram in real samples with a rapid and sensitive visual readout. This colorimetric assay of thiram relies on the change in the surface plasmon resonance (SPR) band of the GSH-Lac-Ag NPs, resulting in their aggregation by thiram, which leads to a visual change of the GSH-Lac-Ag NPs from yellow to reddish brown. As a result, the SPR band of GSH-Lac-Ag NPs red-shifts from 406 nm to 458 nm, showing good linearity in the range of 0.01 µM to 3.00 µM (R2 = 0.9841) with a limit of detection (LOD) of 3.00 nM. Addition of other pesticides did not show a remarkable red-shift of the SPR band of the GSH-Lac-Ag NPs, indicating their high selectivity as a colorimetric sensor. This method enables a facile and portable analytical platform for on-site detection of thiram in real samples with minimum volume.

Graphic Abstract

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Anhänge
Nur mit Berechtigung zugänglich
Literatur
1.
Zurück zum Zitat E.M.A. Valle, C. Santamaría, S.A.S. Machado, and J.M. Fernández, Thiram and picloram as entrapping agents for lead depicted by electrochemical methodsJ. Braz. Chem. Soc. 21, 1052 (2010).CrossRef E.M.A. Valle, C. Santamaría, S.A.S. Machado, and J.M. Fernández, Thiram and picloram as entrapping agents for lead depicted by electrochemical methodsJ. Braz. Chem. Soc. 21, 1052 (2010).CrossRef
2.
Zurück zum Zitat V.K. Sharma, J.S. Aulakh, and A.K. Malik, Thiram: degradation, applications and analytical methodsJ. Environ. Monit. 5, 717 (2003).CrossRef V.K. Sharma, J.S. Aulakh, and A.K. Malik, Thiram: degradation, applications and analytical methodsJ. Environ. Monit. 5, 717 (2003).CrossRef
3.
Zurück zum Zitat M.B. Bhavya, R. Prabhu, B.M. Shenoy, P. Bhol, S. Swain, M. Saxena, N.S. John, G. Hegde, and A.K. Samal, Femtomolar detection of thiram via SERS using silver nanocubes as an efficient substrateEnviron. Sci. Nano 7, 3999 (2020).CrossRef M.B. Bhavya, R. Prabhu, B.M. Shenoy, P. Bhol, S. Swain, M. Saxena, N.S. John, G. Hegde, and A.K. Samal, Femtomolar detection of thiram via SERS using silver nanocubes as an efficient substrateEnviron. Sci. Nano 7, 3999 (2020).CrossRef
4.
Zurück zum Zitat J.P. Zubrod, M. Bundschuh, G. Arts, C.A. Brühl, G. Imfeld, A. Knäbel, S. Payraudeau, J.J. Rasmussen, J. Rohr, and A. Scharmüller, Fungicides: an overlooked pesticide classEnviron. Sci. Technol. 53, 3347 (2019).CrossRef J.P. Zubrod, M. Bundschuh, G. Arts, C.A. Brühl, G. Imfeld, A. Knäbel, S. Payraudeau, J.J. Rasmussen, J. Rohr, and A. Scharmüller, Fungicides: an overlooked pesticide classEnviron. Sci. Technol. 53, 3347 (2019).CrossRef
5.
Zurück zum Zitat M.C. Fisher, D.A. Henk, C.J. Briggs, J.S. Brownstein, L.C. Madoff, S.L. McCraw, and S.J. Gurr, Emerging fungal threats to animal, plant and ecosystem healthNature 484, 186 (2012).CrossRef M.C. Fisher, D.A. Henk, C.J. Briggs, J.S. Brownstein, L.C. Madoff, S.L. McCraw, and S.J. Gurr, Emerging fungal threats to animal, plant and ecosystem healthNature 484, 186 (2012).CrossRef
6.
Zurück zum Zitat C. Zhu, X. Wang, X. Shi, F. Yang, G. Meng, Q. Xiong, Y. Ke, H. Wang, Y. Lu, and N. Wu, Detection of dithiocarbamate pesticides with a spongelike surface-enhanced Raman scattering substrate made of reduced graphene oxide-wrapped silver nanocubesACS Appl. Mater. Interfaces 9, 39618 (2017).CrossRef C. Zhu, X. Wang, X. Shi, F. Yang, G. Meng, Q. Xiong, Y. Ke, H. Wang, Y. Lu, and N. Wu, Detection of dithiocarbamate pesticides with a spongelike surface-enhanced Raman scattering substrate made of reduced graphene oxide-wrapped silver nanocubesACS Appl. Mater. Interfaces 9, 39618 (2017).CrossRef
7.
Zurück zum Zitat Q. Wang, D. Wu, and Z. Chen, Ag dendritic nanostructures for rapid detection of thiram based on surface-enhanced Raman scatteringRSC Adv. 5, 70553 (2015).CrossRef Q. Wang, D. Wu, and Z. Chen, Ag dendritic nanostructures for rapid detection of thiram based on surface-enhanced Raman scatteringRSC Adv. 5, 70553 (2015).CrossRef
8.
Zurück zum Zitat E.M. Maximiano, F. de Lima, C.A.L. Cardoso, and G.J. Arruda, Modification of carbon paste electrodes with recrystallized zeolite for simultaneous quantification of thiram and carbendazim in food samples and an agricultural formulationElectrochim. Acta. 259, 66 (2018).CrossRef E.M. Maximiano, F. de Lima, C.A.L. Cardoso, and G.J. Arruda, Modification of carbon paste electrodes with recrystallized zeolite for simultaneous quantification of thiram and carbendazim in food samples and an agricultural formulationElectrochim. Acta. 259, 66 (2018).CrossRef
9.
Zurück zum Zitat O.M.S. Filipe, M.M. Vidal, A.C. Duarte, and E.B.H. Santos, A solid-phase extraction procedure for the clean-up of thiram from aqueous solutions containing high concentrations of humic substancesTalanta 72, 1235 (2007).CrossRef O.M.S. Filipe, M.M. Vidal, A.C. Duarte, and E.B.H. Santos, A solid-phase extraction procedure for the clean-up of thiram from aqueous solutions containing high concentrations of humic substancesTalanta 72, 1235 (2007).CrossRef
10.
Zurück zum Zitat D. Ringli, and W. Schwack, Selective determination of thiram residues in fruit and vegetables by hydrophilic interaction LC-MSFood Addit. Contam. Part A. 30, 1909 (2013).CrossRef D. Ringli, and W. Schwack, Selective determination of thiram residues in fruit and vegetables by hydrophilic interaction LC-MSFood Addit. Contam. Part A. 30, 1909 (2013).CrossRef
11.
Zurück zum Zitat C. Oellig, and W. Schwack, Comparison of HILIC columns for residue analysis of dithiocarbamate fungicidesJ. Liq. Chromatogr. Relat. Technol. 40, 415 (2017).CrossRef C. Oellig, and W. Schwack, Comparison of HILIC columns for residue analysis of dithiocarbamate fungicidesJ. Liq. Chromatogr. Relat. Technol. 40, 415 (2017).CrossRef
12.
Zurück zum Zitat A. Waseem, M. Yaqoob, and A. Nabi, Determination of thiram in natural waters using flow-injection with cerium(IV)-quinine chemiluminescence systemLuminescence 25, 71 (2010). A. Waseem, M. Yaqoob, and A. Nabi, Determination of thiram in natural waters using flow-injection with cerium(IV)-quinine chemiluminescence systemLuminescence 25, 71 (2010).
13.
Zurück zum Zitat M. Asghar, M. Yaqoob, N. Haque, and A. Nabi, Determination of thiram and aminocarb pesticides in natural water samples using flow injection with tris(2,2’-bipyridyl)ruthenium(II)-diperiodatoargentate(III) chemiluminescence detectionAnal Sci. 29, 1061 (2013).CrossRef M. Asghar, M. Yaqoob, N. Haque, and A. Nabi, Determination of thiram and aminocarb pesticides in natural water samples using flow injection with tris(2,2’-bipyridyl)ruthenium(II)-diperiodatoargentate(III) chemiluminescence detectionAnal Sci. 29, 1061 (2013).CrossRef
14.
Zurück zum Zitat C. Fernandez, A.J. Reviejo, and J.M. Pingarron, Graphite-poly(tetrafluoroethylene) electrodes as electrochemical detectors in flowing systemsAnal. Chim. Acta. 314, 13 (1995).CrossRef C. Fernandez, A.J. Reviejo, and J.M. Pingarron, Graphite-poly(tetrafluoroethylene) electrodes as electrochemical detectors in flowing systemsAnal. Chim. Acta. 314, 13 (1995).CrossRef
15.
Zurück zum Zitat A.K. Malik, and W. Faubel, Capillary electrophoretic determination of tet-ramethylthiuram disulphide (thiram)Anal. Lett. 33, 2055 (2000).CrossRef A.K. Malik, and W. Faubel, Capillary electrophoretic determination of tet-ramethylthiuram disulphide (thiram)Anal. Lett. 33, 2055 (2000).CrossRef
16.
Zurück zum Zitat S.K. Kailasa, J.R. Koduru, M.L. Desai, T.J. Park, R.K. Singhal, and H. Basu, Recent progress on surface chemistry of plasmonic metal nanoparticles for colorimetric assay of drugs in pharmaceutical and biological samplesTrAC Trends Anal. Chem. 105, 106 (2018).CrossRef S.K. Kailasa, J.R. Koduru, M.L. Desai, T.J. Park, R.K. Singhal, and H. Basu, Recent progress on surface chemistry of plasmonic metal nanoparticles for colorimetric assay of drugs in pharmaceutical and biological samplesTrAC Trends Anal. Chem. 105, 106 (2018).CrossRef
17.
Zurück zum Zitat S.K. Kailasa, K. Kiran, and H.F. Wu, Comparison of ZnS semiconductor nanoparticles capped with various functional groups as the matrix and affinity probes for rapid analysis of cyclodextrins and proteins in surface-assisted laser desorption/ionization time-of-flight mass spectrometryAnal. Chem. 80, 9681 (2008).CrossRef S.K. Kailasa, K. Kiran, and H.F. Wu, Comparison of ZnS semiconductor nanoparticles capped with various functional groups as the matrix and affinity probes for rapid analysis of cyclodextrins and proteins in surface-assisted laser desorption/ionization time-of-flight mass spectrometryAnal. Chem. 80, 9681 (2008).CrossRef
18.
Zurück zum Zitat A. Azzouz, S.K. Kailasa, S.S. Lee, A.J. Rascón, E. Ballesteros, M. Zhang, and K.H. Kim, Review of nanomaterials as sorbents in solid-phase extraction for environmental samplesTrends Anal. Chem. 108, 347 (2018).CrossRef A. Azzouz, S.K. Kailasa, S.S. Lee, A.J. Rascón, E. Ballesteros, M. Zhang, and K.H. Kim, Review of nanomaterials as sorbents in solid-phase extraction for environmental samplesTrends Anal. Chem. 108, 347 (2018).CrossRef
19.
Zurück zum Zitat S.K. Kailasa, and H.F. Wu, Nanomaterial-based miniaturized extraction and preconcentration techniques coupled to matrix-assisted laser desorption/ionization mass spectrometry for assaying biomoleculesTrends Anal. Chem. 65, 54 (2015).CrossRef S.K. Kailasa, and H.F. Wu, Nanomaterial-based miniaturized extraction and preconcentration techniques coupled to matrix-assisted laser desorption/ionization mass spectrometry for assaying biomoleculesTrends Anal. Chem. 65, 54 (2015).CrossRef
20.
Zurück zum Zitat K. Rana, J.R. Bhamore, J.V. Rohit, T.J. Park, and S.K. Kailasa, Ligand exchange reactions on citrate-gold nanoparticles for a parallel colorimetric assay of six pesticidesNew J. Chem. 42, 9080 (2018).CrossRef K. Rana, J.R. Bhamore, J.V. Rohit, T.J. Park, and S.K. Kailasa, Ligand exchange reactions on citrate-gold nanoparticles for a parallel colorimetric assay of six pesticidesNew J. Chem. 42, 9080 (2018).CrossRef
21.
Zurück zum Zitat H. Aldewachi, T. Chalati, M.N. Woodroofe, N. Bricklebank, B. Sharrack, and P. Gardiner, Gold nanoparticle-based colorimetric biosensorsNanoscale 10, 18 (2018).CrossRef H. Aldewachi, T. Chalati, M.N. Woodroofe, N. Bricklebank, B. Sharrack, and P. Gardiner, Gold nanoparticle-based colorimetric biosensorsNanoscale 10, 18 (2018).CrossRef
22.
Zurück zum Zitat V.S.A. Piriya, P. Joseph, S.C.G.K. Daniel, S. Lakshmanan, T. Kinoshita, and S. Muthusamy, Colorimetric sensors for rapid detection of various analytesMater. Sci. Eng. C 78, 1231 (2017).CrossRef V.S.A. Piriya, P. Joseph, S.C.G.K. Daniel, S. Lakshmanan, T. Kinoshita, and S. Muthusamy, Colorimetric sensors for rapid detection of various analytesMater. Sci. Eng. C 78, 1231 (2017).CrossRef
23.
Zurück zum Zitat J.V. Rohit, and S.K. Kailasa, Cyclen dithiocarbamate-functionalized silver nanoparticles as a probe for colorimetric sensing of thiram and paraquat pesticides via host–guest chemistryJ. Nanoparticle Res. 16, 2585 (2014).CrossRef J.V. Rohit, and S.K. Kailasa, Cyclen dithiocarbamate-functionalized silver nanoparticles as a probe for colorimetric sensing of thiram and paraquat pesticides via host–guest chemistryJ. Nanoparticle Res. 16, 2585 (2014).CrossRef
24.
Zurück zum Zitat S. Rastegarzadeh, and S. Abdali, Colorimetric determination of thiram based on formation of gold nanoparticles using ascorbic acidTalanta 104, 22 (2013).CrossRef S. Rastegarzadeh, and S. Abdali, Colorimetric determination of thiram based on formation of gold nanoparticles using ascorbic acidTalanta 104, 22 (2013).CrossRef
25.
Zurück zum Zitat S.A. Ghoto, M.Y. Khuhawar, and T.M. Jahangir, others, Applications of copper nanoparticles for colorimetric detection of dithiocarbamate pesticidesJ. Nanostruct. Chem. 9, 77 (2019).CrossRef S.A. Ghoto, M.Y. Khuhawar, and T.M. Jahangir, others, Applications of copper nanoparticles for colorimetric detection of dithiocarbamate pesticidesJ. Nanostruct. Chem. 9, 77 (2019).CrossRef
26.
Zurück zum Zitat N. Fahimi-Kashani, and M.R. Hormozi-Nezhad, Gold-nanoparticle-based colorimetric sensor array for discrimination of organophosphate pesticidesAnal. Chem. 88, 8099 (2016).CrossRef N. Fahimi-Kashani, and M.R. Hormozi-Nezhad, Gold-nanoparticle-based colorimetric sensor array for discrimination of organophosphate pesticidesAnal. Chem. 88, 8099 (2016).CrossRef
27.
Zurück zum Zitat J.R. Bhamore, S. Jha, A.K. Mungara, R.K. Singhal, D. Sonkeshariya, and S.K. Kailasa, One-step green synthetic approach for the preparation of multicolor emitting copper nanoclusters and their applications in chemical species sensing and bioimagingBiosens. Bioelectron. 80, 243 (2016).CrossRef J.R. Bhamore, S. Jha, A.K. Mungara, R.K. Singhal, D. Sonkeshariya, and S.K. Kailasa, One-step green synthetic approach for the preparation of multicolor emitting copper nanoclusters and their applications in chemical species sensing and bioimagingBiosens. Bioelectron. 80, 243 (2016).CrossRef
28.
Zurück zum Zitat V.K. Sharma, J.S. Aulakh, and A.K. Malik, Fourth derivative spectrophotometric determination of fungicide thiram (tetramethyldithiocarbamate) using sodium molybdate and its applicationTalanta 65, 375 (2005).CrossRef V.K. Sharma, J.S. Aulakh, and A.K. Malik, Fourth derivative spectrophotometric determination of fungicide thiram (tetramethyldithiocarbamate) using sodium molybdate and its applicationTalanta 65, 375 (2005).CrossRef
29.
Zurück zum Zitat H. Parham, N. Pourreza, and F. Marahel, Determination of thiram using gold nanoparticles and resonance Rayleigh scattering methodTalanta 141, 143 (2015).CrossRef H. Parham, N. Pourreza, and F. Marahel, Determination of thiram using gold nanoparticles and resonance Rayleigh scattering methodTalanta 141, 143 (2015).CrossRef
30.
Zurück zum Zitat C.H. Zhang, J. Zhu, J.J. Li, and J.W. Zhao, Small and sharp triangular silver nanoplates synthesized utilizing tiny triangular nuclei and their excellent SERS activity for selective detection of thiram residue in soilACS Appl. Mater. Interfaces. 9, 17387 (2017).CrossRef C.H. Zhang, J. Zhu, J.J. Li, and J.W. Zhao, Small and sharp triangular silver nanoplates synthesized utilizing tiny triangular nuclei and their excellent SERS activity for selective detection of thiram residue in soilACS Appl. Mater. Interfaces. 9, 17387 (2017).CrossRef
31.
Zurück zum Zitat Y. Yu, P. Zeng, C. Yang, J. Gong, R. Liang, Q. Ou, and S. Zhang, Gold-nanorod-coated capillaries for the SERS-based detection of thiramACS Appl. Nano Mater. 2, 598 (2019).CrossRef Y. Yu, P. Zeng, C. Yang, J. Gong, R. Liang, Q. Ou, and S. Zhang, Gold-nanorod-coated capillaries for the SERS-based detection of thiramACS Appl. Nano Mater. 2, 598 (2019).CrossRef
32.
Zurück zum Zitat M. Chen, W. Luo, Q. Liu, N. Hao, Y. Zhu, M. Liu, L. Wang, H. Yang, and X. Chen, Simultaneous in situ extraction and fabrication of surface-enhanced Raman scattering substrate for reliable detection of thiram residueAnal. Chem. 90, 13647 (2018).CrossRef M. Chen, W. Luo, Q. Liu, N. Hao, Y. Zhu, M. Liu, L. Wang, H. Yang, and X. Chen, Simultaneous in situ extraction and fabrication of surface-enhanced Raman scattering substrate for reliable detection of thiram residueAnal. Chem. 90, 13647 (2018).CrossRef
33.
Zurück zum Zitat Z. Xiong, M. Lin, H. Lin, and M. Huang, Facile synthesis of cellulose nanofiber nanocomposite as a SERS substrate for detection of thiram in juiceCarbohydr. Polym. 189, 79 (2018).CrossRef Z. Xiong, M. Lin, H. Lin, and M. Huang, Facile synthesis of cellulose nanofiber nanocomposite as a SERS substrate for detection of thiram in juiceCarbohydr. Polym. 189, 79 (2018).CrossRef
34.
Zurück zum Zitat D. Xiong, and H. Li, Colorimetric detection of pesticides based on calixarene modified silver nanoparticles in waterNanotechnology 19, 465502 (2008).CrossRef D. Xiong, and H. Li, Colorimetric detection of pesticides based on calixarene modified silver nanoparticles in waterNanotechnology 19, 465502 (2008).CrossRef
35.
Zurück zum Zitat J.V. Rohit, J.N. Solanki, and S.K. Kailasa, Surface modification of silver nanoparticles with dopamine dithiocarbamate for selective colorimetric sensing of mancozeb in environmental samplesSens. Actuators B Chem. 200, 219 (2014).CrossRef J.V. Rohit, J.N. Solanki, and S.K. Kailasa, Surface modification of silver nanoparticles with dopamine dithiocarbamate for selective colorimetric sensing of mancozeb in environmental samplesSens. Actuators B Chem. 200, 219 (2014).CrossRef
36.
Zurück zum Zitat S.K. Menon, N.R. Modi, A. Pandya, and A. Lodha, Ultrasensitive and specific detection of dimethoate using ap-sulphonato-calix [4] resorcinarene functionalized silver nanoprobe in aqueous solutionRSC Adv. 3, 10623 (2013).CrossRef S.K. Menon, N.R. Modi, A. Pandya, and A. Lodha, Ultrasensitive and specific detection of dimethoate using ap-sulphonato-calix [4] resorcinarene functionalized silver nanoprobe in aqueous solutionRSC Adv. 3, 10623 (2013).CrossRef
37.
Zurück zum Zitat J.V. Rohit, and S.K. Kailasa, 5-Sulfo anthranilic acid dithiocarbamate functionalized silver nanoparticles as a colorimetric probe for the simple and selective detection of tricyclazole fungicide in rice samplesAnal. Methods. 6, 5934 (2014).CrossRef J.V. Rohit, and S.K. Kailasa, 5-Sulfo anthranilic acid dithiocarbamate functionalized silver nanoparticles as a colorimetric probe for the simple and selective detection of tricyclazole fungicide in rice samplesAnal. Methods. 6, 5934 (2014).CrossRef
38.
Zurück zum Zitat J.R. Bhamore, P. Ganguly, and S.K. Kailasa, Molecular assembly of 3-mercaptopropinonic acid and guanidine acetic acid on silver nanoparticles for selective colorimetric detection of triazophos in water and food samplesSens. Actuators B 233, 486 (2016).CrossRef J.R. Bhamore, P. Ganguly, and S.K. Kailasa, Molecular assembly of 3-mercaptopropinonic acid and guanidine acetic acid on silver nanoparticles for selective colorimetric detection of triazophos in water and food samplesSens. Actuators B 233, 486 (2016).CrossRef
39.
Zurück zum Zitat M. Safarpoor, M. Ghaedi, A. Asfaram, M. Yousefi-Nejad, H. Javadian, H.Z. Khafri, and M. Bagherinasab, Ultrasound-assisted extraction of antimicrobial compounds from Thymus daenensis and Silybum marianum: antimicrobial activity with and without the presence of natural silver nanoparticlesUltrason. Sonochem. 42, 76 (2018).CrossRef M. Safarpoor, M. Ghaedi, A. Asfaram, M. Yousefi-Nejad, H. Javadian, H.Z. Khafri, and M. Bagherinasab, Ultrasound-assisted extraction of antimicrobial compounds from Thymus daenensis and Silybum marianum: antimicrobial activity with and without the presence of natural silver nanoparticlesUltrason. Sonochem. 42, 76 (2018).CrossRef
40.
Zurück zum Zitat E. Solaymani, M. Ghaedi, H. Karimi, M.H.A. Azqhandi, and A. Asfaram, Intensified removal of Malachite green by AgOH-AC nanoparticles combined with ultrasound: modeling and optimizationAppl. Organom. Chem. 31, 3857 (2017).CrossRef E. Solaymani, M. Ghaedi, H. Karimi, M.H.A. Azqhandi, and A. Asfaram, Intensified removal of Malachite green by AgOH-AC nanoparticles combined with ultrasound: modeling and optimizationAppl. Organom. Chem. 31, 3857 (2017).CrossRef
41.
Zurück zum Zitat J.V. Rohit, H. Basu, R.K. Singhal, and S.K. Kailasa, Development of p-nitroaniline dithiocarbamate capped gold nanoparticles-based microvolume UV-visible spectrometric method for facile and selective detection of quinalphos insecticide in environmental samplesSens. Actuators B 237, 826 (2016).CrossRef J.V. Rohit, H. Basu, R.K. Singhal, and S.K. Kailasa, Development of p-nitroaniline dithiocarbamate capped gold nanoparticles-based microvolume UV-visible spectrometric method for facile and selective detection of quinalphos insecticide in environmental samplesSens. Actuators B 237, 826 (2016).CrossRef
42.
Zurück zum Zitat M.R. Kateshiya, N.I. Malek, Z.V.P. Murthy, and S.K. Kailasa, Designing of glutathione-lactose derivative for the fabrication of gold nanoclusters with red fluorescence: sensing of Al3+ and Cu2+ ions with two different mechanisms. Opt. Mater. 100, 109704 (2020).CrossRef M.R. Kateshiya, N.I. Malek, Z.V.P. Murthy, and S.K. Kailasa, Designing of glutathione-lactose derivative for the fabrication of gold nanoclusters with red fluorescence: sensing of Al3+ and Cu2+ ions with two different mechanisms. Opt. Mater. 100, 109704 (2020).CrossRef
44.
Zurück zum Zitat M.A. Hernandez-Olmos, L. Agu, P. Yanez-Sedeno, and J.M. Pingarron, Analytical voltammetry in low-permitivity organic solvents using disk and cylindrical microelectrodes, determination of thiram in ethyl acetateElectrochim. Acta. 46, 289 (2000).CrossRef M.A. Hernandez-Olmos, L. Agu, P. Yanez-Sedeno, and J.M. Pingarron, Analytical voltammetry in low-permitivity organic solvents using disk and cylindrical microelectrodes, determination of thiram in ethyl acetateElectrochim. Acta. 46, 289 (2000).CrossRef
45.
Zurück zum Zitat K. Novakova, T. Navratil, J.J. Dytrtova, and J. Chylkova, The use of copper solid amalgam electrodes for determination of the pesticide thiramJ. Solid State Electrochem. 17, 1517 (2013).CrossRef K. Novakova, T. Navratil, J.J. Dytrtova, and J. Chylkova, The use of copper solid amalgam electrodes for determination of the pesticide thiramJ. Solid State Electrochem. 17, 1517 (2013).CrossRef
46.
Zurück zum Zitat J.S. Aulakh, A.K. Malik, and R.K. Mahajan, Solid phase microextraction- high pressure liquid chromatographic determination of nabam, thiram and azamethiphos in water samples with UV detection: preliminary dataTalanta 66, 266 (2005).CrossRef J.S. Aulakh, A.K. Malik, and R.K. Mahajan, Solid phase microextraction- high pressure liquid chromatographic determination of nabam, thiram and azamethiphos in water samples with UV detection: preliminary dataTalanta 66, 266 (2005).CrossRef
47.
Zurück zum Zitat C. Fernandez, A.J. Reviejo, L.M. Polo, and J.M. Pingarron, HPLC-electrochemical detection with graphite-poly (tetrafluoroethylene) electrode determination of the fungicides thiram and disulfiramTalanta 43, 1341 (1996).CrossRef C. Fernandez, A.J. Reviejo, L.M. Polo, and J.M. Pingarron, HPLC-electrochemical detection with graphite-poly (tetrafluoroethylene) electrode determination of the fungicides thiram and disulfiramTalanta 43, 1341 (1996).CrossRef
48.
Zurück zum Zitat A. Peruga, S. Grimalt, F.J. Lopez, J.V. Sancho, and F. Hernandez, Optimisation and validation of a specific analytical method for the determination of thiram residues in fruits and vegetables by LC-MS/MSFood Chem. 135, 186 (2012).CrossRef A. Peruga, S. Grimalt, F.J. Lopez, J.V. Sancho, and F. Hernandez, Optimisation and validation of a specific analytical method for the determination of thiram residues in fruits and vegetables by LC-MS/MSFood Chem. 135, 186 (2012).CrossRef
49.
Zurück zum Zitat T. Cajka, K. Riddellova, P. Zomer, H. Mol, and H. Jana, Direct analysis of dithiocarbamate fungicides in fruit by ambient mass spectrometryFood Addit. Contam. A 28, 1372 (2011).CrossRef T. Cajka, K. Riddellova, P. Zomer, H. Mol, and H. Jana, Direct analysis of dithiocarbamate fungicides in fruit by ambient mass spectrometryFood Addit. Contam. A 28, 1372 (2011).CrossRef
Metadaten
Titel
Functionalization of Silver Nanoparticles with Carbohydrate Derivative for Colorimetric Assay of Thiram
verfasst von
Vishal Dhavle
Mehul R. Kateshiya
Tae-Jung Park
Suresh Kumar Kailasa
Publikationsdatum
14.04.2021
Verlag
Springer US
Erschienen in
Journal of Electronic Materials / Ausgabe 6/2021
Print ISSN: 0361-5235
Elektronische ISSN: 1543-186X
DOI
https://doi.org/10.1007/s11664-021-08875-y

Weitere Artikel der Ausgabe 6/2021

Journal of Electronic Materials 6/2021 Zur Ausgabe

Topical Collection: Carbon-Based Materials for Energy Storage

Construction of a Pt/g-C3N4/SiC Heterostructure for Enhanced Methanol Photoelectrooxidation

Topical Collection: 62nd Electronic Materials Conference 2020

Effect of GaN Substrate Properties on Vertical GaN PiN Diode Electrical Performance

Neuer Inhalt