Cargando…

High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications

[Image: see text] We used high-throughput experimental screening methods to unveil the physical and chemical properties of Mn(1–x)Zn(x)O wurtzite alloys and identify their appropriate composition for effective water splitting application. The Mn(1–x)Zn(x)O thin films were synthesized using combinato...

Descripción completa

Detalles Bibliográficos
Autores principales: Ndione, Paul F., Ratcliff, Erin L., Dey, Suhash R., Warren, Emily L., Peng, Haowei, Holder, Aaron M., Lany, Stephan, Gorman, Brian P., Al-Jassim, Mowafak M., Deutsch, Todd G., Zakutayev, Andriy, Ginley, David S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6648451/
https://www.ncbi.nlm.nih.gov/pubmed/31459840
http://dx.doi.org/10.1021/acsomega.8b03347
_version_ 1783437871871426560
author Ndione, Paul F.
Ratcliff, Erin L.
Dey, Suhash R.
Warren, Emily L.
Peng, Haowei
Holder, Aaron M.
Lany, Stephan
Gorman, Brian P.
Al-Jassim, Mowafak M.
Deutsch, Todd G.
Zakutayev, Andriy
Ginley, David S.
author_facet Ndione, Paul F.
Ratcliff, Erin L.
Dey, Suhash R.
Warren, Emily L.
Peng, Haowei
Holder, Aaron M.
Lany, Stephan
Gorman, Brian P.
Al-Jassim, Mowafak M.
Deutsch, Todd G.
Zakutayev, Andriy
Ginley, David S.
author_sort Ndione, Paul F.
collection PubMed
description [Image: see text] We used high-throughput experimental screening methods to unveil the physical and chemical properties of Mn(1–x)Zn(x)O wurtzite alloys and identify their appropriate composition for effective water splitting application. The Mn(1–x)Zn(x)O thin films were synthesized using combinatorial pulsed laser deposition, permitting for characterization of a wide range of compositions with x varying from 0 to 1. The solubility limit of ZnO in MnO was determined using the disappearing phase method from X-ray diffraction and X-ray fluorescence data and found to increase with decreasing substrate temperature due to kinetic limitations of the thin-film growth at relatively low temperature. Optical measurements indicate the strong reduction of the optical band gap down to 2.1 eV at x = 0.5 associated with the rock salt-to-wurtzite structural transition in Mn(1–x)Zn(x)O alloys. Transmission electron microscopy results show evidence of a homogeneous wurtzite alloy system for a broad range of Mn(1–x)Zn(x)O compositions above x = 0.4. The wurtzite Mn(1–x)Zn(x)O samples with the 0.4 < x < 0.6 range were studied as anodes for photoelectrochemical water splitting, with a maximum current density of 340 μA cm(–2) for 673 nm-thick films. These Mn(1–x)Zn(x)O films were stable in pH = 10, showing no evidence of photocorrosion or degradation after 24 h under water oxidation conditions. Doping Mn(1–x)Zn(x)O materials with Ga dramatically increases the electrical conductivity of Mn(1–x)Zn(x)O up to ∼1.9 S/cm for x = 0.48, but these doped samples are not active in water splitting. Mott–Schottky and UPS/XPS measurements show that the presence of dopant atoms reduces the space charge region and increases the number of mid-gap surface states. Overall, this study demonstrates that Mn(1–x)Zn(x)O alloys hold promise for photoelectrochemical water splitting, which could be enhanced with further tailoring of their electronic properties.
format Online
Article
Text
id pubmed-6648451
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-66484512019-08-27 High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications Ndione, Paul F. Ratcliff, Erin L. Dey, Suhash R. Warren, Emily L. Peng, Haowei Holder, Aaron M. Lany, Stephan Gorman, Brian P. Al-Jassim, Mowafak M. Deutsch, Todd G. Zakutayev, Andriy Ginley, David S. ACS Omega [Image: see text] We used high-throughput experimental screening methods to unveil the physical and chemical properties of Mn(1–x)Zn(x)O wurtzite alloys and identify their appropriate composition for effective water splitting application. The Mn(1–x)Zn(x)O thin films were synthesized using combinatorial pulsed laser deposition, permitting for characterization of a wide range of compositions with x varying from 0 to 1. The solubility limit of ZnO in MnO was determined using the disappearing phase method from X-ray diffraction and X-ray fluorescence data and found to increase with decreasing substrate temperature due to kinetic limitations of the thin-film growth at relatively low temperature. Optical measurements indicate the strong reduction of the optical band gap down to 2.1 eV at x = 0.5 associated with the rock salt-to-wurtzite structural transition in Mn(1–x)Zn(x)O alloys. Transmission electron microscopy results show evidence of a homogeneous wurtzite alloy system for a broad range of Mn(1–x)Zn(x)O compositions above x = 0.4. The wurtzite Mn(1–x)Zn(x)O samples with the 0.4 < x < 0.6 range were studied as anodes for photoelectrochemical water splitting, with a maximum current density of 340 μA cm(–2) for 673 nm-thick films. These Mn(1–x)Zn(x)O films were stable in pH = 10, showing no evidence of photocorrosion or degradation after 24 h under water oxidation conditions. Doping Mn(1–x)Zn(x)O materials with Ga dramatically increases the electrical conductivity of Mn(1–x)Zn(x)O up to ∼1.9 S/cm for x = 0.48, but these doped samples are not active in water splitting. Mott–Schottky and UPS/XPS measurements show that the presence of dopant atoms reduces the space charge region and increases the number of mid-gap surface states. Overall, this study demonstrates that Mn(1–x)Zn(x)O alloys hold promise for photoelectrochemical water splitting, which could be enhanced with further tailoring of their electronic properties. American Chemical Society 2019-04-24 /pmc/articles/PMC6648451/ /pubmed/31459840 http://dx.doi.org/10.1021/acsomega.8b03347 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Ndione, Paul F.
Ratcliff, Erin L.
Dey, Suhash R.
Warren, Emily L.
Peng, Haowei
Holder, Aaron M.
Lany, Stephan
Gorman, Brian P.
Al-Jassim, Mowafak M.
Deutsch, Todd G.
Zakutayev, Andriy
Ginley, David S.
High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications
title High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications
title_full High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications
title_fullStr High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications
title_full_unstemmed High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications
title_short High-Throughput Experimental Study of Wurtzite Mn(1–x)Zn(x)O Alloys for Water Splitting Applications
title_sort high-throughput experimental study of wurtzite mn(1–x)zn(x)o alloys for water splitting applications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6648451/
https://www.ncbi.nlm.nih.gov/pubmed/31459840
http://dx.doi.org/10.1021/acsomega.8b03347
work_keys_str_mv AT ndionepaulf highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT ratclifferinl highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT deysuhashr highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT warrenemilyl highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT penghaowei highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT holderaaronm highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT lanystephan highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT gormanbrianp highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT aljassimmowafakm highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT deutschtoddg highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT zakutayevandriy highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications
AT ginleydavids highthroughputexperimentalstudyofwurtzitemn1xznxoalloysforwatersplittingapplications