The number of novel crystalline framework materials, in particular metal-organic frameworks (MOFs) and covalent organic frameworks (COFs), is continually increasing. These materials employ the concept of reticular chemistry, which describes the connection of molecular building blocks (MBBs) to construct extended and crystalline open frameworks. The elegance of this approach produces a large degree of structural diversity and endless possibilities for tuning framework functionality, by rational selection and dynamic exchange of individual MBBs either pre- or post-synthetically. However, several studies have highlighted that certain framework properties can strongly differ even under comparable chemical composition. Lattice defects can produce unexpected catalytic activity, adsorption properties, and mechanical stability. These defects impact framework composition and can be used to engineer framework materials that deviate from their ideal framework behavior. In contrast, an increasing number of studies have now demonstrated that framework properties can also be manipulated by simply modifying the size and morphology of the crystals under identical chemical composition.
The effects of crystal size and morphology are a novel domain in the chemistry of extended framework materials, beyond the traditional picture of reticular chemistry and structural defects, allowing the manipulation of host-guest, chemical, and physical properties of materials without modification of chemical composition or the characteristics of individual molecular building blocks.
However, there are limited studies in this field, leaving many questions yet unanswered: What are the mechanisms responsible for the influence of crystal size and morphology on framework materials? How general are these phenomena? On what length scale do these effects occur? To what extent can the anisotropy of crystal morphologies alter the framework properties? How can these effects be characterized by experimental or computational methods? What are the strategies for employing these effects in enhancing framework materials for various applications?
This wide range of questions clearly illustrates the open challenge in this area and the tremendous opportunity for further understanding the effect of crystal size and morphology. We believe that these challenges can only be met by a diverse assembly of scientists from unique backgrounds and complementary fields.
In this Symposium, we aim to gather all researchers interested in this field for a round-table discussion and exciting talks on this topic, following the homonymous Research Topic published in Frontiers in Chemistry and accessible through this link.
Prof Susumu Kitagawa
Institute for Integrated Cell-Material Sciences (iCeMS), Kyoto University, Japan
Prof David Fairen-Jimenez
Adsorption & Advanced Materials Lab,
University of Cambridge, United Kingdom
Prof Stefan Wuttke
Wuttkegroup for Science, Basque Center for Materials, Applications and Nanostructures, Spain
Sander Vandenhaute
Center for Molecular Modeling (CMM),
Ghent University, Belgium
Read their original Frontiers
in Chemistry work here
Leila Abylgazina
Chair of Inorganic Chemistry I,
TU Dresden, Germany
Read their original Frontiers
in Chemistry work here
Larissa Schaper
Computationals Materials Chemistry Group, Ruhr-Universität Bochum, Germany
Read their original Frontiers
in Chemistry work here
Prof Veronique Van Speybroeck
Center for Molecular Modeling (CMM),
Ghent University, Belgium
Prof Rochus Schmid
Computationals Materials Chemistry Group,
Ruhr-Universität Bochum, Germany
Prof Susumu Kitagawa
Institute for Integrated Cell-Material Sciences (iCeMS), Kyoto University, Japan
Prof David Fairen-Jimenez
Adsorption & Advanced Materials Lab,
University of Cambridge, United Kingdom
Prof Stefan Wuttke
Wuttkegroup for Science, Basque Center for Materials, Applications and Nanostructures, Spain
09h00 - 09h20
09h20 - 09h45
09h45 - 10h00
10h00 - 10h30
10h30 - 11h00
11h00 - 11h30
11h30 - 11h45
11h45 - 12h15
12h15 - 12h45
Introductory talk by Prof Susumu Kitagawa
Round-table discussion
Break
Opening talk by Prof David Fairen-Jimenez
Talk by Sander Vandenhaute
Talk by Leila Abylgazina
Break
Talk by Larissa Schaper
Closing talk by Prof Stefan Wuttke
You can rewatch the talks and panel discussion below!
Hana Bunzen, Augsburg University
Jack D. Evans, The University of Adelaide
Claire Hobday, University of Edinburgh
Simon Krause, Max-Planck-Institute for Solid State Research
Sven M.J. Rogge, Ghent University