Cargando…

The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels

A cost-effective solution for the synthesis of high-porosity TiO(2) aerogels, which can be used as a mesoporous perovskite network charge-carrier material during the manufacture of solar cells, is described. The effects of the synthesis parameters (precursor (titanium (IV) isopropoxide (TIP) and tet...

Descripción completa

Detalles Bibliográficos
Autores principales: Donėlienė, Jolanta, Fataraitė-Urbonienė, Eglė, Danchova, Nina, Gutzov, Stoyan, Ulbikas, Juras
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9323803/
https://www.ncbi.nlm.nih.gov/pubmed/35877507
http://dx.doi.org/10.3390/gels8070422
_version_ 1784756643664232448
author Donėlienė, Jolanta
Fataraitė-Urbonienė, Eglė
Danchova, Nina
Gutzov, Stoyan
Ulbikas, Juras
author_facet Donėlienė, Jolanta
Fataraitė-Urbonienė, Eglė
Danchova, Nina
Gutzov, Stoyan
Ulbikas, Juras
author_sort Donėlienė, Jolanta
collection PubMed
description A cost-effective solution for the synthesis of high-porosity TiO(2) aerogels, which can be used as a mesoporous perovskite network charge-carrier material during the manufacture of solar cells, is described. The effects of the synthesis parameters (precursor (titanium (IV) isopropoxide (TIP) and tetrabutyl orthotitanate (TBOT)), additional solvent exchange (n-hexane (nH), cyclohexane (CH), and diethyl ether (DE)), subcritical drying (800 mbar vacuum, 70 °C, 8 h), aging, and calcination on the aerogel’s structure have been investigated. Methods of XRD, FT-IR, BET, Raman, STA, SEM, UV–vis, and thermal conductivity measurements were applied to find out the relation between the synthesis conditions and the properties of the synthesized aerogels. Amorphous aerogels are polydispersed systems with the highest probability of pore diameter from 0.5 to 15 nm. An nH-exchanged, aged aerogel synthesized from the precursor TIP shows the highest diameter of pores. After calcination, the aerogels tend to crystallize into an anatase phase and the size of the crystallites depends on the precursor’s nature. Calcination leads to a significant increase in both the apparent and true density of the aerogels, and it also results in an increase in porosity and thermal conductivity.
format Online
Article
Text
id pubmed-9323803
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-93238032022-07-27 The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels Donėlienė, Jolanta Fataraitė-Urbonienė, Eglė Danchova, Nina Gutzov, Stoyan Ulbikas, Juras Gels Article A cost-effective solution for the synthesis of high-porosity TiO(2) aerogels, which can be used as a mesoporous perovskite network charge-carrier material during the manufacture of solar cells, is described. The effects of the synthesis parameters (precursor (titanium (IV) isopropoxide (TIP) and tetrabutyl orthotitanate (TBOT)), additional solvent exchange (n-hexane (nH), cyclohexane (CH), and diethyl ether (DE)), subcritical drying (800 mbar vacuum, 70 °C, 8 h), aging, and calcination on the aerogel’s structure have been investigated. Methods of XRD, FT-IR, BET, Raman, STA, SEM, UV–vis, and thermal conductivity measurements were applied to find out the relation between the synthesis conditions and the properties of the synthesized aerogels. Amorphous aerogels are polydispersed systems with the highest probability of pore diameter from 0.5 to 15 nm. An nH-exchanged, aged aerogel synthesized from the precursor TIP shows the highest diameter of pores. After calcination, the aerogels tend to crystallize into an anatase phase and the size of the crystallites depends on the precursor’s nature. Calcination leads to a significant increase in both the apparent and true density of the aerogels, and it also results in an increase in porosity and thermal conductivity. MDPI 2022-07-06 /pmc/articles/PMC9323803/ /pubmed/35877507 http://dx.doi.org/10.3390/gels8070422 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Donėlienė, Jolanta
Fataraitė-Urbonienė, Eglė
Danchova, Nina
Gutzov, Stoyan
Ulbikas, Juras
The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels
title The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels
title_full The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels
title_fullStr The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels
title_full_unstemmed The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels
title_short The Influence of the Precursor’s Nature and Drying Conditions on the Structure, Morphology, and Thermal Properties of TiO(2) Aerogels
title_sort influence of the precursor’s nature and drying conditions on the structure, morphology, and thermal properties of tio(2) aerogels
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9323803/
https://www.ncbi.nlm.nih.gov/pubmed/35877507
http://dx.doi.org/10.3390/gels8070422
work_keys_str_mv AT donelienejolanta theinfluenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT fataraiteurbonieneegle theinfluenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT danchovanina theinfluenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT gutzovstoyan theinfluenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT ulbikasjuras theinfluenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT donelienejolanta influenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT fataraiteurbonieneegle influenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT danchovanina influenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT gutzovstoyan influenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels
AT ulbikasjuras influenceoftheprecursorsnatureanddryingconditionsonthestructuremorphologyandthermalpropertiesoftio2aerogels