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Three Dimensional Nanoscale Analysis Reveals Aperiodic Mesopores in a Covalent Organic Framework and Conjugated Microporous Polymer

Authors :
Química aplicada
Kimika aplikatua
Stoppiello, Craig T.
Isla, Helena
Martínez Abadía, Marta
Fay, Michael W.
Parmenter, Christopher D. J.
Roe, Martin J.
Lerma Berlanga, Belén
Martí Gastaldo, Carlos
Mateo Alonso, Aurelio
Khlobystov, Andrei N.
Química aplicada
Kimika aplikatua
Stoppiello, Craig T.
Isla, Helena
Martínez Abadía, Marta
Fay, Michael W.
Parmenter, Christopher D. J.
Roe, Martin J.
Lerma Berlanga, Belén
Martí Gastaldo, Carlos
Mateo Alonso, Aurelio
Khlobystov, Andrei N.
Publication Year :
2019

Abstract

The integrated analytical approach developed in this study offers a powerful methodology for the structural characterisation of complex molecular nanomaterials. Structures of a covalent organic framework based on boronate esters (COF-5) and a conjugated microporous polymer (Aza-CMP) have been investigated by a combination of several electron microscopy techniques elucidating the three-dimensional topology of the complex polycrystalline (COF) and non-crystalline (CMP) materials. Unexpected, aperiodic mesoporous channels of 20-50 nm in diameter were found to be penetrating the COF and CMP particles, which cannot be detected by X-ray diffraction techniques. The mesopores appear to be stable under a range of different conditions and accessible to gas molecules, exhibiting a particular bonding capability with CO2 in the case of the CMP. The mesoporosity is unrelated to the intrinsic chemical structures of the COF or CMP but rather it reflects the mechanisms of polymer particle formation in a polycondensation reaction. The mesopores may be templated by clusters of solvent molecules during the COF or CMP synthesis, leaving cavities within the polymer particles. The unexpected mesoporosity discovered in COF and CMP materials begs for re-assessment of the nature of framework materials and may open new opportunities for applications of these molecular materials in gas sorption or catalysis.

Details

Database :
OAIster
Notes :
We acknowledge the support of the Engineering and Physical Science Research Council (EPSRC) for funding, and the Nanoscale and Microscale Research Centre (nmRC) for access to instrumentation. We are also grateful to the Basque Science Foundation for Science (Ikerbasque), POLYMAT, the University of the Basque Country (Grupo de Investigacion GIU17/054 and SGIker), Gobierno de Espana (Ministerio de Economia y Competitividad CTQ2016-77970-R, CTQ2017-83486-P and FPU16/04162), Gobierno Vasco (BERC program). This project has received funding from the European Union's Horizon 2020 research and innovation programme under grant agreement no 664878. This project has received funding from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (grant agreements 722951 and 714122)., English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1102525454
Document Type :
Electronic Resource