Direct Hydrothermal Synthesis and Characterization of Zr–Ce-Incorporated SBA-15 Catalysts for the Pyrolysis Reaction of Algal Biomass

Author:

Ghimiș Simona-Bianca1,Oancea Florin1ORCID,Raduly Monica-Florentina1ORCID,Mîrț Andreea-Luiza1ORCID,Trică Bogdan1ORCID,Cîlțea-Udrescu Mihaela1,Vasilievici Gabriel1ORCID

Affiliation:

1. National Institute for Research & Development in Chemistry and Petrochemistry-ICECHIM Bucharest, 202 Spl. Independentei, 6th District, 060021 Bucharest, Romania

Abstract

In recent years, algae have emerged as a promising feedstock for biofuel production, due to their eco-friendly, sustainable, and renewable nature. Various methods, including chemical, biochemical, and thermochemical processes, are used to convert algal biomass into biofuels. Pyrolysis, a widely recognized thermochemical technique, involves high temperature and pressure to generate biochar and bio-oil from diverse algal sources. Various pyrolytic processes transform algal biomass into biochar and bio-oil, including low pyrolysis, fast pyrolysis, catalytic pyrolysis, microwave-assisted pyrolysis, and hydropyrolysis. These methods are utilized to convert a range of microalgae and cyanobacteria into biochar and bio-oil. In this publication, we will discuss catalytic pyrolysis using mesoporous materials, such as SBA-15. Mesoporous catalysts have earned significant attention for catalytic reactions, due to their high surface area, facilitating the better distribution of impregnated metal. Pyrolysis conducted in the presence of a mesoporous catalyst is viewed more as efficient, compared to reactions occurring within the smaller microporous cavities of traditional zeolites. SBA-15 supports with incorporated Zr and/or Ce were synthesized using the direct hydrothermal synthesis method. The catalyst was characterized using structural and morphological technical analysis and utilized for the pyrolysis reaction of the algal biomass.

Publisher

MDPI AG

Reference26 articles.

1. Use of green chemical technologies in an integrated biorefinery;Budarin;Energy Environ. Sci.,2010

2. Modeling of smart mixing regimes to improve marine biorefinery productivity and energy efficiency;Golberg;Algal Res.,2015

3. Main routes for the thermo-conversion of biomass into fuels and chemicals. Part 1: Pyrolysis systems;Balat;Energy Convers. Manag.,2009

4. Martini, P.R.R. (2009). Conversão Pirolítica de Bagaço Residual da Indústria de Suco de Laranja e Caracterização Química dos Produtos. [Master’s Dissertation, PPGQ, Universidade Federal de Santa Maria].

5. A review of bio-oil upgrading by catalytic hydrotreatment: Advances, challenges, and prospects;Zhang;Mol. Catal.,2021

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