Synergy of Block and Microporous Polymers with Tailored Zeolitic Imidazole Frameworks for Membrane‐Based Direct Air Capture

Íñigo Martínez‐Visus (Nanoscience and Materials Institute of Aragon (INMA) CSIC‐Universidad de Zaragoza Mariano Esquillor St. Zaragoza 50018 Spain) L Lucía Carrillo‐Sánchez (Instituto de Nanociencia y Materiales de Aragón (INMA) CSIC‐Universidad de Zaragoza Zaragoza 50018 Spain) J José Miguel Luque‐Alled (Nanoscience and Materials Institute of Aragon (INMA) CSIC‐Universidad de Zaragoza Mariano Esquillor St. Zaragoza 50018 Spain) A Andrew B. Foster (Department of Chemistry School of Natural Sciences The University of Manchester Manchester M13 9PL UK) P Peter M. Budd (Department of Chemistry School of Natural Sciences The University of Manchester Manchester M13 9PL UK) C Carlos Téllez (Instituto de Nanociencia y Materiales de Aragón (INMA) CSIC‐Universidad de Zaragoza Zaragoza 50018 Spain) J Joaquín Coronas (Nanoscience and Materials Institute of Aragon (INMA) CSIC‐Universidad de Zaragoza Mariano Esquillor St. Zaragoza 50018 Spain)

Abstract

Abstract Direct air capture (DAC) concerns the separation from air of carbon dioxide (CO 2 ), the most significant greenhouse gas in the atmosphere, as a means of producing negative emissions. The challenge for the scientific and industrial communities is tremendous, and membrane technology is postulated as an efficient alternative in terms of energy, costs, and ease of implementation. Two polymers, commercial elastomeric PolyActive and high‐performance polymer of intrinsic microporosity (PIM‐1), with complementary permeation‐selectivity features, to form both dense and thin film composite membranes, are studied to operate in the 500 ppm to 15% range of CO 2 feed concentration and at 10–50 °C temperatures. A study on its synergistic pairing for a multistage DAC process is evaluated and to enhance the separation performance, the membranes are modified with zeolitic imizadolate frameworks (ZIF), capable of modification by solvent‐assisted ligand exchange (SALE). A sequential SALE process is designed using two different ligands, one hydrophilic and the other hydrophobic, to modify nanosized ZIF‐8 and produce a ZIF with tailored ligand composition. This is aimed at improving both the CO 2 interaction and compatibility of MOF with the membrane polymer, achieving at 500 ppm a CO 2 permeance of 1037 GPU with a CO 2 /N 2 selectivity of 16.2.

Article Details

Volume / Issue Vol. 1, Issue 1
Published October 06, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

Íñigo Martínez‐Visus

Nanoscience and Materials Institute of Aragon (INMA) CSIC‐Universidad de Zaragoza Mariano Esquillor St. Zaragoza 50018 Spain

L

Lucía Carrillo‐Sánchez

Instituto de Nanociencia y Materiales de Aragón (INMA) CSIC‐Universidad de Zaragoza Zaragoza 50018 Spain

J

José Miguel Luque‐Alled

Nanoscience and Materials Institute of Aragon (INMA) CSIC‐Universidad de Zaragoza Mariano Esquillor St. Zaragoza 50018 Spain

A

Andrew B. Foster

Department of Chemistry School of Natural Sciences The University of Manchester Manchester M13 9PL UK

P

Peter M. Budd

Department of Chemistry School of Natural Sciences The University of Manchester Manchester M13 9PL UK

C

Carlos Téllez

Instituto de Nanociencia y Materiales de Aragón (INMA) CSIC‐Universidad de Zaragoza Zaragoza 50018 Spain

J

Joaquín Coronas

Nanoscience and Materials Institute of Aragon (INMA) CSIC‐Universidad de Zaragoza Mariano Esquillor St. Zaragoza 50018 Spain