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Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue

Decorating two-dimensional (2D) nanomaterials with nanoparticles provides an effective method to integrate their physicochemical properties. In this work, we present the hydrothermal growth process of 2D zinc oxide nanoplates (ZnO NPls), then silver nanoparticles (AgNPs) were uniformly distributed o...

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Autores principales: Ha Pham, Thi Thu, Vu, Xuan Hoa, Dien, Nguyen Dac, Trang, Tran Thu, Kim Chi, Tran Thi, Phuong, Pham Ha, Nghia, Nguyen Trong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8982176/
https://www.ncbi.nlm.nih.gov/pubmed/35424719
http://dx.doi.org/10.1039/d2ra00620k
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author Ha Pham, Thi Thu
Vu, Xuan Hoa
Dien, Nguyen Dac
Trang, Tran Thu
Kim Chi, Tran Thi
Phuong, Pham Ha
Nghia, Nguyen Trong
author_facet Ha Pham, Thi Thu
Vu, Xuan Hoa
Dien, Nguyen Dac
Trang, Tran Thu
Kim Chi, Tran Thi
Phuong, Pham Ha
Nghia, Nguyen Trong
author_sort Ha Pham, Thi Thu
collection PubMed
description Decorating two-dimensional (2D) nanomaterials with nanoparticles provides an effective method to integrate their physicochemical properties. In this work, we present the hydrothermal growth process of 2D zinc oxide nanoplates (ZnO NPls), then silver nanoparticles (AgNPs) were uniformly distributed on the surface of ZnO NPls through the reduction procedure of silver nitrate with sodium borohydride to create a metal–semiconductor hybrid. The amount of AgNPs on the ZnO NPls' surface was carefully controlled by varying the volume of silver nitrate (AgNO(3)) solution. Moreover, the effect of AgNPs on the surface-enhanced Raman scattering (SERS) property of ZnO NPls was thoroughly investigated by using methylene blue (MB) as the target molecule. After calculation, the maximum enhancement factor value for 10(−4) M of MB reached 6.2 × 10(6) for the peak at 1436 cm(−1) and the limit of detection was 10(−9) M. In addition, the hybrid nanosystem could distinguish MB with good reproducibility over a wide range of concentrations, from 10(−9) to 10(−4) M. The SERS mechanism is well elucidated based on the chemical and electromagnetic mechanisms related to the synergism of ZnO and Ag in the enhancement of Raman signal. Abundant hot spots located at the gap between adjacent separate Ag nanoparticles and ZnO nanoplates which formed a strong local electromagnetic field and electron transfer between ZnO and Ag are considered to be the key factors affecting the SERS performance of our prepared ZnO/Ag substrates. In this research, we found high sensitivity of ZnO nanoplates/Ag nanoparticles in detecting MB molecules. This unique metal–semiconductor hybrid nanosystem is advantageous for the formation of Raman signals and is thus suitable for the trace detection of methylene blue.
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spelling pubmed-89821762022-04-13 Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue Ha Pham, Thi Thu Vu, Xuan Hoa Dien, Nguyen Dac Trang, Tran Thu Kim Chi, Tran Thi Phuong, Pham Ha Nghia, Nguyen Trong RSC Adv Chemistry Decorating two-dimensional (2D) nanomaterials with nanoparticles provides an effective method to integrate their physicochemical properties. In this work, we present the hydrothermal growth process of 2D zinc oxide nanoplates (ZnO NPls), then silver nanoparticles (AgNPs) were uniformly distributed on the surface of ZnO NPls through the reduction procedure of silver nitrate with sodium borohydride to create a metal–semiconductor hybrid. The amount of AgNPs on the ZnO NPls' surface was carefully controlled by varying the volume of silver nitrate (AgNO(3)) solution. Moreover, the effect of AgNPs on the surface-enhanced Raman scattering (SERS) property of ZnO NPls was thoroughly investigated by using methylene blue (MB) as the target molecule. After calculation, the maximum enhancement factor value for 10(−4) M of MB reached 6.2 × 10(6) for the peak at 1436 cm(−1) and the limit of detection was 10(−9) M. In addition, the hybrid nanosystem could distinguish MB with good reproducibility over a wide range of concentrations, from 10(−9) to 10(−4) M. The SERS mechanism is well elucidated based on the chemical and electromagnetic mechanisms related to the synergism of ZnO and Ag in the enhancement of Raman signal. Abundant hot spots located at the gap between adjacent separate Ag nanoparticles and ZnO nanoplates which formed a strong local electromagnetic field and electron transfer between ZnO and Ag are considered to be the key factors affecting the SERS performance of our prepared ZnO/Ag substrates. In this research, we found high sensitivity of ZnO nanoplates/Ag nanoparticles in detecting MB molecules. This unique metal–semiconductor hybrid nanosystem is advantageous for the formation of Raman signals and is thus suitable for the trace detection of methylene blue. The Royal Society of Chemistry 2022-03-10 /pmc/articles/PMC8982176/ /pubmed/35424719 http://dx.doi.org/10.1039/d2ra00620k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ha Pham, Thi Thu
Vu, Xuan Hoa
Dien, Nguyen Dac
Trang, Tran Thu
Kim Chi, Tran Thi
Phuong, Pham Ha
Nghia, Nguyen Trong
Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue
title Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue
title_full Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue
title_fullStr Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue
title_full_unstemmed Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue
title_short Ag nanoparticles on ZnO nanoplates as a hybrid SERS-active substrate for trace detection of methylene blue
title_sort ag nanoparticles on zno nanoplates as a hybrid sers-active substrate for trace detection of methylene blue
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8982176/
https://www.ncbi.nlm.nih.gov/pubmed/35424719
http://dx.doi.org/10.1039/d2ra00620k
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