Microwave catalytic pyrolysis of biomass: a review focusing on absorbents and catalysts

Author:

Ke Linyao,Zhou Nan,Wu Qiuhao,Zeng Yuan,Tian Xiaojie,Zhang Jiahui,Fan Liangliang,Ruan Roger,Wang Yunpu

Abstract

AbstractThe quest for low-carbon alternatives to fossil fuels and the carbon emissions associated with the natural degradation of biomass have accelerated the development of biomass processing technologies. Microwave catalytic pyrolysis is emerging as a technology for efficient conversion of biomass into energy, fuels and chemicals. However, due to the inherent poor dielectric properties and complex composition of biomass, two main technical challenges faced by microwave catalytic pyrolysis of biomass are efficient heating of biomass and improving the selectivity of target products. Potential solutions involve the use of microwave absorbents and catalysts, respectively. This review begins by addressing the difficulty in balancing energy efficiency and conversion efficiency by introducing microwave absorbents that play a positive role in improving heating efficiency. The principle of microwave absorbents in assisting biomass heating is revealed, and the impacts of the microwave absorbent type (related to microwave properties and physical properties) and the additive amount on the heating effect and biomass pyrolysis product distribution are discussed. Subsequently, the search for catalysts applied in biomass microwave pyrolysis for modulation of product distribution is explored. Special attention has been paid to the catalysts with microwave absorption properties, including activated carbon, zeolites, some metal oxides and metal salts. In addition, the energy efficiency, economic feasibility, and environmental impacts of this processing technology utilizing microwave absorbents and catalysts are examined based on energy analysis, techno-economic assessment, and life cycle assessment. The current scale-up challenges of microwave catalytic pyrolysis of biomass and some potential solutions to enhance the commercial feasibility of this technology are also discussed. Finally, the review provides some future development directions of this technology.

Funder

the National Natural Science Foundation of China

The Jiangxi Provincial Natural Science Foundation

The Jiangxi Provincial Financial Science and Technology Special “contract-system” Pilot Demonstration Project

Jiangxi “Double Thousand Plan”

Publisher

Springer Science and Business Media LLC

Reference209 articles.

1. Energy Institute (EI). Statistical Review of World Energy. https://www.energyinst.org/statistical-review (2023).

2. United Nations. The Paris Agreement. The Paris Agreement | United Nations (2016).

3. Huber, G. W., Iborra, S. & Corma, A. Synthesis of transportation fuels from biomass: Chemistry, catalysts, and engineering. Chem. Rev. 106, 4044–4098 (2006).

4. National Forestry and Grassland Administration. Interpretation of the “four reservoirs” series on forests: forests as reservoirs of money. https://www.forestry.gov.cn/main/586/20220420/085520434899596.html (2022).

5. International Energy Agency (IEA). Renewables 2022. https://www.iea.org/reports/renewables-2022 (2022).

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