A BN-Isostere of a Porous Organic Polymer Using Azabora-Spirobifluorenes

Abstract Porous organic polymers that can be processed using organic solvents are attractive materials for a range of applications. Switching a CC unit for an isoelectronic BN unit is a powerful method to modulate the key properties of organic polymers; however, this approach is underexplored in the field of soluble porous organic polymers. To access isostructural CC/BN porous organic polymers, the synthesis of azabora-spirobifluorenes (BN-SBF) functionalized with methoxy/bromo groups was developed. While the use of 9-bromo-9-borafluorene (1) in pyridine-directed electrophilic borylation enabled the synthesis of a dimethoxy-substituted BN-SBF, this method could not be extended to access a tetramethoxy-BN-SBF derivative. The latter compound, while accessible via a lithiation/transmetalation route, was incompatible with various ether cleavage protocols. A BN-SBF-containing polymer instead was synthesized using a dibromo-functionalized BN-SBF monomer, which also could be synthesized via pyridine-directed electrophilic borylation using compound 1. The BN-SBF-based polymer proved to have comparable porosity to its CC analogue; however, it and the CC analogue did not form robust free-standing membranes. Nevertheless, this work highlights the feasibility of accessing a BN isostere of an established solution-processable porous organic polymer.

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Publication Details

Journal
Organometallics
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.organomet.6c00284
Primary Topic
Covalent Organic Framework Applications
Type
article
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article

A BN-Isostere of a Porous Organic Polymer Using Azabora-Spirobifluorenes

Dominic Taylor, Kang Yuan, Michael J. Ingleson, Isabel Wenjia He et al.
Organometallics
Covalent Organic Framework Applications
article

A BN-Isostere of a Porous Organic Polymer Using Azabora-Spirobifluorenes

Dominic Taylor, Kang Yuan, Michael J. Ingleson, Isabel Wenjia He, Gary S. Nichol, Arnaud Osi, Neil B. McKeown
article en

Abstract

Abstract Porous organic polymers that can be processed using organic solvents are attractive materials for a range of applications. Switching a CC unit for an isoelectronic BN unit is a powerful method to modulate the key properties of organic polymers; however, this approach is underexplored in the field of soluble porous organic polymers. To access isostructural CC/BN porous organic polymers, the synthesis of azabora-spirobifluorenes (BN-SBF) functionalized with methoxy/bromo groups was developed. While the use of 9-bromo-9-borafluorene (1) in pyridine-directed electrophilic borylation enabled the synthesis of a dimethoxy-substituted BN-SBF, this method could not be extended to access a tetramethoxy-BN-SBF derivative. The latter compound, while accessible via a lithiation/transmetalation route, was incompatible with various ether cleavage protocols. A BN-SBF-containing polymer instead was synthesized using a dibromo-functionalized BN-SBF monomer, which also could be synthesized via pyridine-directed electrophilic borylation using compound 1. The BN-SBF-based polymer proved to have comparable porosity to its CC analogue; however, it and the CC analogue did not form robust free-standing membranes. Nevertheless, this work highlights the feasibility of accessing a BN isostere of an established solution-processable porous organic polymer.

Organometallics
University of Edinburgh (GB)
Openalex Percentile: Top 28%
Covalent Organic Framework Applications
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