The Treatment of Natural Calcium Materials Using the Supercritical Antisolvent Method for CO2 Capture Applications

Author:

Nobre Luís C. S.1,Teixeira Paula2ORCID,Pinheiro Carla I. C.2ORCID,Palavra António M. F.2,Calvete Mário J. F.3ORCID,Nieto de Castro Carlos A.1ORCID,Nobre Beatriz P.2

Affiliation:

1. Centro de Química Estrutural, Institute of Molecular Sciences, Departamento de Química e Bioquímica, Faculdade de Ciências, Universidade de Lisboa, Campo Grande, 1749-016 Lisboa, Portugal

2. Centro de Química Estrutural, Institute of Molecular Sciences, Departamento de Engenharia Química, Instituto Superior Técnico, Universidade de Lisboa, Av. Rovisco Pais, 1049-001 Lisboa, Portugal

3. Centro de Química de Coimbra, Institute of Molecular Sciences, Departamento de Química, Universidade de Coimbra, 3004-535 Coimbra, Portugal

Abstract

The potential of the supercritical antisolvent micronization (SAS) technique was evaluated for the production of CaO-based particles with a size and a physical structure that could enable high performance for CO2 capture through the calcium looping process. Two sources of calcium derivative compounds were tested, waste marble powder (WMP) and dolomite. The SAS micronization of the derivate calcium acetate was carried out at 60 °C, 200 bar, a 0.5 mL min−1 flow rate of liquid solution, and 20 mg mL−1 concentration of solute, producing, with a yield of more than 70%, needle-like particles. Moreover, since dolomite presents with a mixture of calcium and magnesium carbonates, the influence of the magnesium fraction in the SAS micronization was also assessed. The micronized mixtures with lower magnesium content (higher calcium fraction) presented needle-like particles similar to WMP. On the other hand, for the higher magnesium fractions, the micronized material was similar to magnesium acetate micronization, presenting sphere-like particles. The use of the micronized material in the Ca-looping processes, considering 10 carbonation-calcination cycles under mild and realistic conditions, showed that under mild conditions, the micronized WMP improved CaO conversion. After 10 cycles the micronization, WMP presented a conversion 1.8 times greater than the unprocessed material. The micronized dolomite, under both mild and real conditions, maintained more stable conversion after 10 cycles.

Funder

FCT

Publisher

MDPI AG

Reference33 articles.

1. Brundtland Commission (1987). World Commission on Environment and Development, Elsevier.

2. United Nations (2021, November 22). Transforming Our World: The 2030 Agenda for Sustainable Development. Available online: https://sdgs.un.org/2030agenda.

3. A Critical Review on Sustainable Hazardous Waste Management Strategies: A Step towards a Circular Economy;Kumar;Environ. Sci. Pollut. Res.,2023

4. Industrial Solid Waste for Heavy Metals Adsorption Features and Challenges; a Review;Soliman;J. Mater. Res. Technol.,2020

5. Industrial Waste Reuse: An Alternative Source to Reduced Graphene Oxide for Preparing Electrochemical Sensors;Melo;Electrochim. Acta,2023

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