Issue 3, 2025

Process-based screening of porous materials for vacuum swing adsorption based on 1D classical density functional theory and PC-SAFT

Abstract

Adsorption-based processes are showing substantial potential for carbon capture. Due to the vast space of potential solid adsorbents and their influence on the process performance, the choice of the material is not trivial but requires systematic approaches. In particular, the material choice should be based on the performance of the resulting process. In this work, we present a method for the process-based screening of porous materials for pressure and vacuum swing adsorption. The method is based on an equilibrium process model that incorporates one-dimensional classical density functional theory (1D-DFT) and the PC-SAFT equation of state. Thereby, the presented method can efficiently screen databases of potential adsorbents and identify the best-performing materials as well as the corresponding optimized process conditions for a specific carbon capture application. We apply our method to a point-source carbon capture application at a cement plant. The results show that the process model is crucial to evaluating the performance of adsorbents instead of relying solely on material heuristics. Furthermore, we enhance our approach through multi-objective optimization and demonstrate for materials with high performance that our method is able to capture the trade-offs between two process objectives, such as specific work and purity. The presented method thus provides an efficient screening tool for adsorbents to maximize process performance.

Graphical abstract: Process-based screening of porous materials for vacuum swing adsorption based on 1D classical density functional theory and PC-SAFT

Supplementary files

Article information

Article type
Paper
Submitted
25 Jul 2024
Accepted
21 Dec 2024
First published
01 Jan 2025
This article is Open Access
Creative Commons BY license

Mol. Syst. Des. Eng., 2025,10, 219-227

Process-based screening of porous materials for vacuum swing adsorption based on 1D classical density functional theory and PC-SAFT

F. Mayer, B. Buhk, J. Schilling, P. Rehner, J. Gross and A. Bardow, Mol. Syst. Des. Eng., 2025, 10, 219 DOI: 10.1039/D4ME00127C

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