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Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins

A gold nanourchin (AuNU) probe with a novel sensing mechanism for monitoring H(2)S was developed as a feasible colorimetric sensor. In this study, AuNUs that are selectively responsive to H(2)S were fabricated in the presence of trisodium citrate and 1,4-hydroquinone using a seed-mediated approach....

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Detalles Bibliográficos
Autores principales: Park, Hana, Yoon, Su-Jin, Nam, Yun-Sik, Lee, Ji Yeong, Lee, Yeonhee, Kim, Jin Young, Lee, Kang-Bong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10631460/
https://www.ncbi.nlm.nih.gov/pubmed/38025876
http://dx.doi.org/10.1039/d3ra05527b
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author Park, Hana
Yoon, Su-Jin
Nam, Yun-Sik
Lee, Ji Yeong
Lee, Yeonhee
Kim, Jin Young
Lee, Kang-Bong
author_facet Park, Hana
Yoon, Su-Jin
Nam, Yun-Sik
Lee, Ji Yeong
Lee, Yeonhee
Kim, Jin Young
Lee, Kang-Bong
author_sort Park, Hana
collection PubMed
description A gold nanourchin (AuNU) probe with a novel sensing mechanism for monitoring H(2)S was developed as a feasible colorimetric sensor. In this study, AuNUs that are selectively responsive to H(2)S were fabricated in the presence of trisodium citrate and 1,4-hydroquinone using a seed-mediated approach. Upon exposure of the AuNU solution to H(2)S, the hydrosulfide ions (HS(−)) in the solution are converted into oligomeric sulfides by 1,4-hydroquinone used as a reducing agent during the synthesis of AuNUs. The oligomeric sulfides formed in the AuNU solution upon the addition of H(2)S were found to coat the surface of the AuNUs, introducing a blue shift in absorption accompanied by a color change in the solution from sky blue to light green. This colorimetric alteration by the capping of oligomeric sulfides on the surface of AuNUs is unique compared to well-known color change mechanisms, such as aggregation, etching, or growth of nanoparticles. The novel H(2)S sensing mechanism of the AuNUs was characterized using UV-Vis spectroscopy, high-resolution transmission microscopy, X-ray photoelectron spectroscopy, surface-enhanced Raman spectroscopy, secondary ion mass spectroscopy, liquid chromatography-tandem mass spectrometry, and atom probe tomography. H(2)S was reliably monitored with two calibration curves comprising two sections with different slopes according to the low (0.3–15 μM) and high (15.0–300 μM) concentration range using the optimized AuNU probe, and a detection limit of 0.29 μM was obtained in tap water.
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spelling pubmed-106314602023-11-08 Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins Park, Hana Yoon, Su-Jin Nam, Yun-Sik Lee, Ji Yeong Lee, Yeonhee Kim, Jin Young Lee, Kang-Bong RSC Adv Chemistry A gold nanourchin (AuNU) probe with a novel sensing mechanism for monitoring H(2)S was developed as a feasible colorimetric sensor. In this study, AuNUs that are selectively responsive to H(2)S were fabricated in the presence of trisodium citrate and 1,4-hydroquinone using a seed-mediated approach. Upon exposure of the AuNU solution to H(2)S, the hydrosulfide ions (HS(−)) in the solution are converted into oligomeric sulfides by 1,4-hydroquinone used as a reducing agent during the synthesis of AuNUs. The oligomeric sulfides formed in the AuNU solution upon the addition of H(2)S were found to coat the surface of the AuNUs, introducing a blue shift in absorption accompanied by a color change in the solution from sky blue to light green. This colorimetric alteration by the capping of oligomeric sulfides on the surface of AuNUs is unique compared to well-known color change mechanisms, such as aggregation, etching, or growth of nanoparticles. The novel H(2)S sensing mechanism of the AuNUs was characterized using UV-Vis spectroscopy, high-resolution transmission microscopy, X-ray photoelectron spectroscopy, surface-enhanced Raman spectroscopy, secondary ion mass spectroscopy, liquid chromatography-tandem mass spectrometry, and atom probe tomography. H(2)S was reliably monitored with two calibration curves comprising two sections with different slopes according to the low (0.3–15 μM) and high (15.0–300 μM) concentration range using the optimized AuNU probe, and a detection limit of 0.29 μM was obtained in tap water. The Royal Society of Chemistry 2023-11-08 /pmc/articles/PMC10631460/ /pubmed/38025876 http://dx.doi.org/10.1039/d3ra05527b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Park, Hana
Yoon, Su-Jin
Nam, Yun-Sik
Lee, Ji Yeong
Lee, Yeonhee
Kim, Jin Young
Lee, Kang-Bong
Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins
title Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins
title_full Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins
title_fullStr Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins
title_full_unstemmed Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins
title_short Novel H(2)S sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins
title_sort novel h(2)s sensing mechanism derived from the formation of oligomeric sulfide capping the surface of gold nanourchins
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10631460/
https://www.ncbi.nlm.nih.gov/pubmed/38025876
http://dx.doi.org/10.1039/d3ra05527b
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