Gold nanoparticles-decorated paper-based sensor for rapid cyanide detection in water
In this study, a versatile sensing platform based on a commercially available filter paper for the development of a colorimetric sensor using label-free gold nanoparticles (AuNPs) for the detection of cyanide in water is presented. The developed sensor can be applied for the direct detection of cyan...
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Published in | Advances in natural sciences. Nanoscience and nanotechnology Vol. 12; no. 2; pp. 25007 - 25014 |
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Main Authors | , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Hanoi
IOP Publishing
01.06.2021
|
Subjects | |
Online Access | Get full text |
ISSN | 2043-6254 2043-6262 2043-6262 |
DOI | 10.1088/2043-6262/abffc7 |
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Abstract | In this study, a versatile sensing platform based on a commercially available filter paper for the development of a colorimetric sensor using label-free gold nanoparticles (AuNPs) for the detection of cyanide in water is presented. The developed sensor can be applied for the direct detection of cyanide from an aqueous sample efficiently in a wide concentration range. The synthesised AuNPs were found to have an average size of about 13.2 ± 2.65 nm with a surface plasmon resonance peak at around 525 nm. Successful integration of AuNPs on the WFP substrate was observed through the FESEM-EDX analysis and supported by the presence of an absorbance peak at about 528 nm on the spectrum of the WFP-AuNPs composite. The colour of the WFP-AuNPs composite changed from purple-red to white in the presence of cyanide. Using the paper-based sensor, the limit of detection is calculated to be 7.68 × 10
−6
M (0.5 ppm). The said sensitivity is good enough for the determination of cyanide in industrial wastewater samples. The developed sensor also showed excellent selectivity towards cyanide over other ions, demonstrating its practical applicability to monitor cyanide contamination in different environmental samples. Furthermore, the applicability of the sensor was demonstrated using several real water samples spiked with cyanide, including creek and tap water. Notably, the sensor showed great promise for the rapid, cost-effective, and versatile monitoring of cyanide contamination in various aqueous samples. |
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AbstractList | In this study, a versatile sensing platform based on a commercially available filter paper for the development of a colorimetric sensor using label-free gold nanoparticles (AuNPs) for the detection of cyanide in water is presented. The developed sensor can be applied for the direct detection of cyanide from an aqueous sample efficiently in a wide concentration range. The synthesised AuNPs were found to have an average size of about 13.2 ± 2.65 nm with a surface plasmon resonance peak at around 525 nm. Successful integration of AuNPs on the WFP substrate was observed through the FESEM-EDX analysis and supported by the presence of an absorbance peak at about 528 nm on the spectrum of the WFP-AuNPs composite. The colour of the WFP-AuNPs composite changed from purple-red to white in the presence of cyanide. Using the paper-based sensor, the limit of detection is calculated to be 7.68 × 10
−6
M (0.5 ppm). The said sensitivity is good enough for the determination of cyanide in industrial wastewater samples. The developed sensor also showed excellent selectivity towards cyanide over other ions, demonstrating its practical applicability to monitor cyanide contamination in different environmental samples. Furthermore, the applicability of the sensor was demonstrated using several real water samples spiked with cyanide, including creek and tap water. Notably, the sensor showed great promise for the rapid, cost-effective, and versatile monitoring of cyanide contamination in various aqueous samples. In this study, a versatile sensing platform based on a commercially available filter paper for the development of a colorimetric sensor using label-free gold nanoparticles (AuNPs) for the detection of cyanide in water is presented. The developed sensor can be applied for the direct detection of cyanide from an aqueous sample efficiently in a wide concentration range. The synthesised AuNPs were found to have an average size of about 13.2 ± 2.65 nm with a surface plasmon resonance peak at around 525 nm. Successful integration of AuNPs on the WFP substrate was observed through the FESEM-EDX analysis and supported by the presence of an absorbance peak at about 528 nm on the spectrum of the WFP-AuNPs composite. The colour of the WFP-AuNPs composite changed from purple-red to white in the presence of cyanide. Using the paper-based sensor, the limit of detection is calculated to be 7.68 נ10−6 M (0.5 ppm). The said sensitivity is good enough for the determination of cyanide in industrial wastewater samples. The developed sensor also showed excellent selectivity towards cyanide over other ions, demonstrating its practical applicability to monitor cyanide contamination in different environmental samples. Furthermore, the applicability of the sensor was demonstrated using several real water samples spiked with cyanide, including creek and tap water. Notably, the sensor showed great promise for the rapid, cost-effective, and versatile monitoring of cyanide contamination in various aqueous samples. |
Author | Basilia, Blessie Rodriguez, Mikee Joy Budlayan, Marco Laurence Dela Rosa, Lyka Deocaris, Custer Austria, Eleanor Alguno, Arnold Arco, Susan Patricio, Jonathan Capangpangan, Rey Lagare-Oracion, Jeanne Phyre Manigo, Jonathan |
Author_xml | – sequence: 1 givenname: Marco Laurence surname: Budlayan fullname: Budlayan, Marco Laurence organization: Caraga State University Center for Nanoscience and Technology for Research and Entrepreneurship, Butuan City 8600, Philippines – sequence: 2 givenname: Jeanne Phyre surname: Lagare-Oracion fullname: Lagare-Oracion, Jeanne Phyre organization: Caraga State University Center for Nanoscience and Technology for Research and Entrepreneurship, Butuan City 8600, Philippines – sequence: 3 givenname: Lyka surname: Dela Rosa fullname: Dela Rosa, Lyka organization: Caraga State University Center for Nanoscience and Technology for Research and Entrepreneurship, Butuan City 8600, Philippines – sequence: 4 givenname: Mikee Joy surname: Rodriguez fullname: Rodriguez, Mikee Joy organization: Caraga State University Center for Nanoscience and Technology for Research and Entrepreneurship, Butuan City 8600, Philippines – sequence: 5 givenname: Jonathan surname: Manigo fullname: Manigo, Jonathan organization: Caraga State University Physics Department, Butuan City 8600, Philippines – sequence: 6 givenname: Arnold surname: Alguno fullname: Alguno, Arnold organization: Mindanao State University-Iligan Institute of Technology Department of Physics, Iligan City 9200, Philippines – sequence: 7 givenname: Eleanor surname: Austria fullname: Austria, Eleanor organization: Adamson University Department of Biology, Manila 1000, Philippines – sequence: 8 givenname: Susan surname: Arco fullname: Arco, Susan organization: University of the Philippines Diliman Synthetic Organic Chemistry Laboratory, Institute of Chemistry, Quezon City, Metro Manila 1101, Philippines – sequence: 9 givenname: Jonathan surname: Patricio fullname: Patricio, Jonathan organization: University of the Philippines Diliman Synthetic Organic Chemistry Laboratory, Institute of Chemistry, Quezon City, Metro Manila 1101, Philippines – sequence: 10 givenname: Custer surname: Deocaris fullname: Deocaris, Custer organization: Philippine Nuclear Research Institute, Department of Science and Technology, Quezon City 1101, Philippines – sequence: 11 givenname: Blessie surname: Basilia fullname: Basilia, Blessie organization: Industrial Technology Development Institute, Department of Science and Technology , Taguig, Metro Manila 1631, Philippines – sequence: 12 givenname: Rey surname: Capangpangan fullname: Capangpangan, Rey organization: Caraga State University Department of Chemistry, Butuan City 8600, Philippines |
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SubjectTerms | Colorimetry Contamination Cyanides Drinking water Filter paper Gold gold nanoparticles Industrial wastes Industrial wastewater label-free Nanoparticles paper-based colorimetric sensor rapid cyanide detection Selectivity Sensors Substrates Surface plasmon resonance Wastewater Water analysis Water sampling |
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Title | Gold nanoparticles-decorated paper-based sensor for rapid cyanide detection in water |
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