Fabrication of Oriented Polycrystalline MOF Superstructures

Author:

Linares‐Moreau Mercedes1ORCID,Brandner Lea A.1ORCID,Velásquez‐Hernández Miriam de J.1ORCID,Fonseca Javier2,Benseghir Youven3,Chin Jia Min3,Maspoch Daniel245ORCID,Doonan Christian6ORCID,Falcaro Paolo1ORCID

Affiliation:

1. Institute of Physical and Theoretical Chemistry Graz University of Technology Graz 8010 Austria

2. Catalan Institute of Nanoscience and Nanotechnology (ICN2) CSIC and The Barcelona Institute of Science and Technology Campus UAB, Bellaterra Barcelona 08193 Spain

3. Faculty of Chemistry Institute of Functional Materials and Catalysis University of Vienna Währingerstr. 42 Vienna A‐1090 Austria

4. Departament de Química Facultat de Ciències Universitat Autònoma de Barcelona (UAB) Cerdanyola del Vallès Barcelona 08193 Spain

5. ICREA Pg. Lluís Companys 23 Barcelona 08010 Spain

6. Department of Chemistry The University of Adelaide Adelaide South Australia 5005 Australia

Abstract

AbstractThe field of metal‐organic frameworks (MOFs) has progressed beyond the design and exploration of powdery and single‐crystalline materials. A current challenge is the fabrication of organized superstructures that can harness the directional properties of the individual constituent MOF crystals. To date, the progress in the fabrication methods of polycrystalline MOF superstructures has led to close‐packed structures with defined crystalline orientation. By controlling the crystalline orientation, the MOF pore channels of the constituent crystals can be aligned along specific directions: these systems possess anisotropic properties including enhanced diffusion along specific directions, preferential orientation of guest species, and protection of functional guests. In this perspective, we discuss the current status of MOF research in the fabrication of oriented polycrystalline superstructures focusing on the specific crystalline directions of orientation. Three methods are examined in detail: the assembly from colloidal MOF solutions, the use of external fields for the alignment of MOF particles, and the heteroepitaxial ceramic‐to‐MOF growth. This perspective aims at promoting the progress of this field of research and inspiring the development of new protocols for the preparation of MOF systems with oriented pore channels, to enable advanced MOF‐based devices with anisotropic properties.

Funder

European Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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