Chemically Tailored Metal‐Organic Frameworks for Enhanced Capture of Short‐ and Long‐Chain Per‐ and Polyfluoroalkyl Substances from Water

Author:

Loukopoulos Edward1ORCID,Marugán‐Benito Sergio1,Raptis Dionysios2ORCID,Tylianakis Emmanuel3ORCID,Froudakis George E.2ORCID,Mavrandonakis Andreas4ORCID,Platero‐Prats Ana E.15ORCID

Affiliation:

1. Departamento de Química Inorgánica Facultad de Ciencias Universidad Autónoma de Madrid Campus de Cantoblanco Madrid 28049 Spain

2. Department of Chemistry University of Crete Heraklion 71003 Greece

3. Department of Materials Science and Technology University of Crete Heraklion Crete 71003 Greece

4. Material Science Institute of Madrid (ICMM‐CSIC) Sor Juana Inés de la Cruz 3 Cantoblanco Madrid 28049 Spain

5. Condensed Matter Physics Center (IFIMAC) Universidad Autónoma de Madrid Campus de Cantoblanco Madrid 28049 Spain

Abstract

AbstractPer‐ and polyfluoroalkyl substances (PFAS) are emerging as bioaccumulative and toxic water pollutants, posing a large threat to human and aquatic organisms. This threat is aggravated by their extreme persistence to common degradation methods. Adsorption is regarded as the most conventional method to treat these contaminants, however, existing sorbents present considerable limitations on performance. The development of more efficient PFAS adsorbents is therefore of urgent need. The class of metal‐organic frameworks (MOFs) can hold great promise for these purposes, featuring porous materials with high tailoring potential. Herein, a series of functionalized Zr‐MOFs have been designed with boosted capacities for the adsorption of short‐ and long‐chain perfluorinated carboxylic acids of environmental interest. The approach relies on chemistry‐based concepts to introduce targeted post‐synthetic modifications that promote PFAS···MOF interactions, specifically through coordinative bonding and hydrophobic effects. In particular, the framework TFA‐MOF‐808 (TFA = trifluoroacetic acid) displays the highest capture capacities reported for MOF materials in this pollutant class. Mechanistic studies, assisted by advanced synchrotron characterization techniques and theoretical calculations, support a ligand exchange process occurring during the adsorption phenomena. The results demonstrate the potential of this design approach in developing advanced PFAS sorbents with optimal performance.

Funder

Ministerio de Ciencia e Innovación

European Synchrotron Radiation Facility

HORIZON EUROPE Reforming and enhancing the European Research and Innovation system

Agencia Estatal de Investigación

Publisher

Wiley

Reference46 articles.

1. Revisiting the “forever chemicals”, PFOA and PFOS exposure in drinking water

2. a)Fact Sheet: EPA's Proposal to Limit PFAS in Drinking Water; United States Environmental Protection Agency Washington D.C 2023;

3. b)Commission Delegated Regulation (EU) 2020/784 OJ L 188I 15.6.2020 pp.1–3;

4. c)Directive (EU) 2020/2184 OJL 435 23.12.2020 pp.1–62.

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