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Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid

Transparent tungsten trioxide thin films, which demonstrated visible-light (Vis-light)-induced superhydrophilicity, with thicknesses of 100–120 nm, adhesion strengths greater than 49 MPa, bandgap energies of 2.8–2.9 eV, and haze values of 0.4–0.5%, were fabricated using a solution-based process on q...

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Autores principales: Murayama, Taichi, Sato, Mitsunobu, Nagai, Hiroki, Yasui, Eiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10044916/
https://www.ncbi.nlm.nih.gov/pubmed/36998652
http://dx.doi.org/10.1039/d2na00717g
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author Murayama, Taichi
Sato, Mitsunobu
Nagai, Hiroki
Yasui, Eiko
author_facet Murayama, Taichi
Sato, Mitsunobu
Nagai, Hiroki
Yasui, Eiko
author_sort Murayama, Taichi
collection PubMed
description Transparent tungsten trioxide thin films, which demonstrated visible-light (Vis-light)-induced superhydrophilicity, with thicknesses of 100–120 nm, adhesion strengths greater than 49 MPa, bandgap energies of 2.8–2.9 eV, and haze values of 0.4–0.5%, were fabricated using a solution-based process on quartz glass substrates. The precursor solution was prepared by dissolving a W(6+) complex salt isolated from a reacted solution of tungstic acid, citric acid, and dibutylamine in H(2)O, in ethanol. By heating the spin-coated films in air for 30 min at temperatures higher than 500 °C, crystallized WO(3) thin films were obtained. The O/W atomic ratio was evaluated to be 2.90, based on the peak area analysis of X-ray photoelectron spectroscopy spectra of the thin-film surfaces, indicating the co-presence of W(5+) ions. The water contact angle on film surfaces, which was approximately 25° prior to light irradiation, decreased to less than 10° upon irradiation with 0.06 mW cm(−2) Vis-light for only 20 min at 20–25 °C and a relative humidity (RH) of 40–50%. By comparing the contact angle changes at RH values of 20–25%, it was revealed that the interaction between ambient water molecules and the partially O-deficient WO(3) thin films plays an important role in achieving photoinduced superhydrophilicity.
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spelling pubmed-100449162023-03-29 Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid Murayama, Taichi Sato, Mitsunobu Nagai, Hiroki Yasui, Eiko Nanoscale Adv Chemistry Transparent tungsten trioxide thin films, which demonstrated visible-light (Vis-light)-induced superhydrophilicity, with thicknesses of 100–120 nm, adhesion strengths greater than 49 MPa, bandgap energies of 2.8–2.9 eV, and haze values of 0.4–0.5%, were fabricated using a solution-based process on quartz glass substrates. The precursor solution was prepared by dissolving a W(6+) complex salt isolated from a reacted solution of tungstic acid, citric acid, and dibutylamine in H(2)O, in ethanol. By heating the spin-coated films in air for 30 min at temperatures higher than 500 °C, crystallized WO(3) thin films were obtained. The O/W atomic ratio was evaluated to be 2.90, based on the peak area analysis of X-ray photoelectron spectroscopy spectra of the thin-film surfaces, indicating the co-presence of W(5+) ions. The water contact angle on film surfaces, which was approximately 25° prior to light irradiation, decreased to less than 10° upon irradiation with 0.06 mW cm(−2) Vis-light for only 20 min at 20–25 °C and a relative humidity (RH) of 40–50%. By comparing the contact angle changes at RH values of 20–25%, it was revealed that the interaction between ambient water molecules and the partially O-deficient WO(3) thin films plays an important role in achieving photoinduced superhydrophilicity. RSC 2023-03-07 /pmc/articles/PMC10044916/ /pubmed/36998652 http://dx.doi.org/10.1039/d2na00717g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Murayama, Taichi
Sato, Mitsunobu
Nagai, Hiroki
Yasui, Eiko
Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid
title Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid
title_full Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid
title_fullStr Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid
title_full_unstemmed Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid
title_short Visible-light-induced superhydrophilicity of crystallized WO(3) thin films fabricated by using a newly isolated W(6+) complex salt of citric acid
title_sort visible-light-induced superhydrophilicity of crystallized wo(3) thin films fabricated by using a newly isolated w(6+) complex salt of citric acid
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10044916/
https://www.ncbi.nlm.nih.gov/pubmed/36998652
http://dx.doi.org/10.1039/d2na00717g
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