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Shaping 90 wt% NanoMOFs into Robust Multifunctional Aerogels Using Tailored Bio‐Based Nanofibrils

Jowan RostamiDepartment of Fibre and Polymer Technology Division of Fibre Technology KTH Royal Institute of Technology Stockholm 11428 SwedenTobias BenselfeltDepartment of Fibre and Polymer Technology Division of Fibre Technology KTH Royal Institute of Technology Stockholm 11428 SwedenLorenza MaddalenaDipartimento di Scienza Applicata e Tecnologia Politecnico di Torino‐Alessandria Campus Viale Teresa Michel 5 Alessandria 15121 ItalyCivan AvcıSorbonne Université CNRS Laboratoire de Chimie de la Matière Condensée de Paris (LCMCP) Paris F‐75005 FranceFarhiya Alex SellmanDepartment of Fibre and Polymer Technology Division of Fibre Technology KTH Royal Institute of Technology Stockholm 11428 SwedenGöksu ÇınarDepartment of Fibre and Polymer Technology Division of Fibre Technology KTH Royal Institute of Technology Stockholm 11428 SwedenPer A. LarssonDepartment of Fibre and Polymer Technology Division of Fibre Technology KTH Royal Institute of Technology Stockholm 11428 SwedenFederico CarosioDipartimento di Scienza Applicata e Tecnologia Politecnico di Torino‐Alessandria Campus Viale Teresa Michel 5 Alessandria 15121 ItalyFarid AkhtarDivision of Materials Science Luleå University of Technology Luleå 97187 SwedenWeiqian TianDepartment of Fibre and Polymer Technology Division of Fibre Technology KTH Royal Institute of Technology Stockholm 11428 SwedenLars WågbergDepartment of Fibre and Polymer Technology Division of Fibre Technology KTH Royal Institute of Technology Stockholm 11428 Sweden
2022en
ABI

Аннотация

Abstract Metal–organic frameworks (MOFs) are hybrid porous crystalline networks with tunable chemical and structural properties. However, their excellent potential is limited in practical applications by their hard‐to‐shape powder form, making it challenging to assemble MOFs into macroscopic composites with mechanical integrity. While a binder matrix enables hybrid materials, such materials have a limited MOF content and thus limited functionality. To overcome this challenge, nanoMOFs are combined with tailored same‐charge high‐aspect‐ratio cellulose nanofibrils (CNFs) to manufacture robust, wet‐stable, and multifunctional MOF‐based aerogels with 90 wt% nanoMOF loading. The porous aerogel architectures show excellent potential for practical applications such as efficient water purification, CO 2 and CH 4 gas adsorption and separation, and fire‐safe insulation. Moreover, a one‐step carbonization process enables these aerogels as effective structural energy‐storage electrodes. This work exhibits the unique ability of high‐aspect‐ratio CNFs to bind large amounts of nanoMOFs in structured materials with outstanding mechanical integrity—a quality that is preserved even after carbonization. The demonstrated process is simple and fully discloses the intrinsic potential of the nanoMOFs, resulting in synergetic properties not found in the components alone, thus paving the way for MOFs in macroscopic multifunctional composites.

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