Selectivity of MOFs and Silica Nanoparticles in CO2 Capture from Flue Gases

Author:

Bucura Felicia1,Spiridon Stefan-Ionut1ORCID,Ionete Roxana Elena1ORCID,Marin Florian1,Zaharioiu Anca Maria1,Armeanu Adrian1,Badea Silviu-Laurentiu1ORCID,Botoran Oana Romina1,Ionete Eusebiu Ilarian1ORCID,Niculescu Violeta-Carolina1ORCID,Constantinescu Marius1

Affiliation:

1. National Research and Development Institute for Cryogenic and Isotopic Technologies—ICSI Ramnicu Valcea, 4 Uzinei Street, P.O. Box Raureni 7, 240050 Ramnicu Valcea, Romania

Abstract

Until reaching climate neutrality by attaining the EU 2050 level, the current levels of CO2 must be mitigated through the research and development of resilient technologies. This research explored potential approaches to lower CO2 emissions resulting from combustion fossil fuels in power plant furnaces. Different nanomaterials (MOFs versus silica nanoparticles) were used in this context to compare their effectiveness to mitigate GHG emissions. Porous materials known as metal–organic frameworks (MOFs) are frequently employed in sustainable CO2 management for selective adsorption and separation. Understanding the underlying mechanism is difficult due to their textural characteristics, the presence of functional groups and the variation in technological parameters (temperature and pressure) during CO2-selective adsorption. A silica-based nanomaterial was also employed in comparison. To systematically map CO2 adsorption as a function of the textural and compositional features of the nanomaterials and the process parameters set to a column-reactor system (CRS), 160 data points were collected for the current investigation. Different scenarios, as a function of P (bar) or as a function of T (K), were designed based on assumptions, 1 and 5 vs. 1–10 (bar) and 313.15 and 373.15 vs. 313.15–423.15 (K), where the regression analyses through Pearson coefficients of 0.92–0.95, coefficients of determination of 0.87–0.90 and p-values < 0.05, on predictive and on-site laboratory data, confirmed the performances of the CRS.

Funder

Romanian Ministry of Research, Innovation and Digitalization

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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