Título: | HYDROGENATION OF CO2 TO METHANOL: THE ROLE OF OXYGEN VACANCIES IN METHANOL SYNTHESIS USING CU/ZNO/AL CATALYSTS AND IN2O3-BASED PHYSICAL MIXTURES | ||||||||||||
Autor: |
BRUNA JULIANA DA SILVA BRONSATO |
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Colaborador(es): |
ROBERTO RIBEIRO DE AVILLEZ - Orientador LUCIA GORENSTIN APPEL - Coorientador |
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Catalogação: | 04/JAN/2024 | Língua(s): | PORTUGUESE - BRAZIL |
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Tipo: | TEXT | Subtipo: | THESIS | ||||||||||
Notas: |
[pt] Todos os dados constantes dos documentos são de inteira responsabilidade de seus autores. Os dados utilizados nas descrições dos documentos estão em conformidade com os sistemas da administração da PUC-Rio. [en] All data contained in the documents are the sole responsibility of the authors. The data used in the descriptions of the documents are in conformity with the systems of the administration of PUC-Rio. |
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Referência(s): |
[pt] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=65823&idi=1 [en] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=65823&idi=2 |
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DOI: | https://doi.org/10.17771/PUCRio.acad.65823 | ||||||||||||
Resumo: | |||||||||||||
This thesis investigated methanol synthesis via CO2 hydrogenation using
two sets of catalysts. The first set consists of the traditional Cu/ZnO/Al
catalysts and the second set involves In2O3 and ZrO2 catalysts. Concerning
Cu/ZnO/Al, four samples were prepared via coprecipitation. The results
showed that there is an optimum Al content (3.8 percent at.) for which a higher
methanol formation rate is observed. The catalysts were characterized by
N2 physisorption, titration with N2O, atomic absorption spectroscopy, ICP,
XRD, XPS (CO2,NH3 and H2O)-TPD, CO2/H2-TPSR, TEM/HRTEM/EDS.
A correlation was observed between the rate of methanol formation and the
amount of surface oxygen vacancies on the catalyst. It was found that Al
acts as a promoter in the generation of oxygen vacancies. Regarding the
In2O3 systems, a screening was carried out and nine catalysts were selected.
These solids were characterized using the following techniques: XRD, NH3-
TPD, CO2-TPD, TPR-H2 and CO2/H2-TPSR. A classical molecular dynamics
study was carried out investigating the effects of doping In2O3 and the
interaction between In2O3 and ZrO2 and relating the results to the performance
of the catalysts. The best catalytic performance was obtained for the new
0,6Pt-In2O3+6ZnZrO2 catalyst, and this performance was associated with the
presence of vacancies. In addition, molecular dynamics calculations showed
that both the physical mixture and the doping of In2O3 can promote the
mobility of oxygen in the oxide lattice, facilitating the formation of oxygen
vacancies. Thus, the two sets of catalysts studied show that oxygen vacancies
play a central role in the formation of methanol from the hydrogenation of CO2.
The information generated in this work will contribute to the development
of promising catalysts for the future industrial exploitation of methanol
generation from CO2.
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