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Updated: Feb 26, 2026

Engineering Molecular Recognition with Bio-mimetic Polymers on Single Walled Carbon Nanotubes
Published on: January 10, 2017
Molecular engineering of mechanophore activity for stress-responsive polymeric materials
Cameron L Brown1, Stephen L Craig1
1Department of Chemistry , Duke University , Durham , NC 27708-0346 , USA . Email: stephen.craig@duke.edu ; Tel: +1 919 660 1538.
Abstract:
Force reactive functional groups, or mechanophores, have emerged as the basis of a potential strategy for sensing and countering stress-induced material failure. The general utility of this strategy is limited, however, because the levels of mechanophore activation in the bulk are typically low and observed only under large, typically irreversible strains. Strategies that enhance activation are therefore quite useful. Molecular-level design principles by which to engineer enhanced mechanophore activity are reviewed, with an emphasis on quantitative structure-activity studies determined for a family of gem-dihalocyclopropane mechanophores.
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