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Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies

Some of the most fundamental chemical building blocks of life on Earth are the metal elements. X-ray absorption spectroscopy (XAS) is an element-specific technique that can analyse the local atomic and electronic structure of, for example, the active sites in catalysts and energy materials and allow...

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Autores principales: Micheal Raj, Pushparani, Barbe, Laurent, Andersson, Martin, De Albuquerque Moreira, Milena, Haase, Dörthe, Wootton, James, Nehzati, Susan, Terry, Ann E., Friel, Ross J., Tenje, Maria, Sigfridsson Clauss, Kajsa G. V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9040903/
https://www.ncbi.nlm.nih.gov/pubmed/35479529
http://dx.doi.org/10.1039/d1ra05270e
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author Micheal Raj, Pushparani
Barbe, Laurent
Andersson, Martin
De Albuquerque Moreira, Milena
Haase, Dörthe
Wootton, James
Nehzati, Susan
Terry, Ann E.
Friel, Ross J.
Tenje, Maria
Sigfridsson Clauss, Kajsa G. V.
author_facet Micheal Raj, Pushparani
Barbe, Laurent
Andersson, Martin
De Albuquerque Moreira, Milena
Haase, Dörthe
Wootton, James
Nehzati, Susan
Terry, Ann E.
Friel, Ross J.
Tenje, Maria
Sigfridsson Clauss, Kajsa G. V.
author_sort Micheal Raj, Pushparani
collection PubMed
description Some of the most fundamental chemical building blocks of life on Earth are the metal elements. X-ray absorption spectroscopy (XAS) is an element-specific technique that can analyse the local atomic and electronic structure of, for example, the active sites in catalysts and energy materials and allow the metal sites in biological samples to be identified and understood. A microfluidic device capable of withstanding the intense hard X-ray beams of a 4th generation synchrotron and harsh chemical sample conditions is presented in this work. The device is evaluated at the K-edges of iron and bromine and the L(3)-edge of lead, in both transmission and fluorescence mode detection and in a wide range of sample concentrations, as low as 0.001 M. The device is fabricated in silicon and glass with plasma etched microchannels defined in the silicon wafer before anodic bonding of the glass wafer into a complete device. The device is supported with a well-designed printed chip holder that made the microfluidic device portable and easy to handle. The chip holder plays a pivotal role in mounting the delicate microfluidic device on the beamline stage. Testing validated that the device was sufficiently robust to contain and flow through harsh acids and toxic samples. There was also no significant radiation damage to the device observed, despite focusing with intense X-ray beams for multiple hours. The quality of X-ray spectra collected is comparable to that from standard methods; hence we present a robust microfluidic device to analyse liquid samples using synchrotron XAS.
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spelling pubmed-90409032022-04-26 Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies Micheal Raj, Pushparani Barbe, Laurent Andersson, Martin De Albuquerque Moreira, Milena Haase, Dörthe Wootton, James Nehzati, Susan Terry, Ann E. Friel, Ross J. Tenje, Maria Sigfridsson Clauss, Kajsa G. V. RSC Adv Chemistry Some of the most fundamental chemical building blocks of life on Earth are the metal elements. X-ray absorption spectroscopy (XAS) is an element-specific technique that can analyse the local atomic and electronic structure of, for example, the active sites in catalysts and energy materials and allow the metal sites in biological samples to be identified and understood. A microfluidic device capable of withstanding the intense hard X-ray beams of a 4th generation synchrotron and harsh chemical sample conditions is presented in this work. The device is evaluated at the K-edges of iron and bromine and the L(3)-edge of lead, in both transmission and fluorescence mode detection and in a wide range of sample concentrations, as low as 0.001 M. The device is fabricated in silicon and glass with plasma etched microchannels defined in the silicon wafer before anodic bonding of the glass wafer into a complete device. The device is supported with a well-designed printed chip holder that made the microfluidic device portable and easy to handle. The chip holder plays a pivotal role in mounting the delicate microfluidic device on the beamline stage. Testing validated that the device was sufficiently robust to contain and flow through harsh acids and toxic samples. There was also no significant radiation damage to the device observed, despite focusing with intense X-ray beams for multiple hours. The quality of X-ray spectra collected is comparable to that from standard methods; hence we present a robust microfluidic device to analyse liquid samples using synchrotron XAS. The Royal Society of Chemistry 2021-09-07 /pmc/articles/PMC9040903/ /pubmed/35479529 http://dx.doi.org/10.1039/d1ra05270e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Micheal Raj, Pushparani
Barbe, Laurent
Andersson, Martin
De Albuquerque Moreira, Milena
Haase, Dörthe
Wootton, James
Nehzati, Susan
Terry, Ann E.
Friel, Ross J.
Tenje, Maria
Sigfridsson Clauss, Kajsa G. V.
Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies
title Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies
title_full Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies
title_fullStr Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies
title_full_unstemmed Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies
title_short Fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard X-ray spectroscopy studies
title_sort fabrication and characterisation of a silicon-borosilicate glass microfluidic device for synchrotron-based hard x-ray spectroscopy studies
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9040903/
https://www.ncbi.nlm.nih.gov/pubmed/35479529
http://dx.doi.org/10.1039/d1ra05270e
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