Journal
ACS CATALYSIS
Volume 7, Issue 9, Pages 5604-5611Publisher
AMER CHEMICAL SOC
DOI: 10.1021/acscatal.7b01701
Keywords
bimolecular reactions; catalysis; nanoreactors; smart polymers; permeability; diffusion-reaction theory
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Funding
- European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme [646659-NANOREACTOR]
- Beijing Advanced Innovation Centre for Soft Matter Science and Engineering
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We describe a general theory for surface-catalyzed bimolecular reactions in responsive nanoreactors, catalytically active nanoparticles coated by a stimuli-responsive gating shell, whose permeability controls the activity of the process. We address two archetypal scenarios encountered in this system: the first, where two species diffusing from a bulk solution react at the catalyst's surface, and the second, where only one of the reactants diffuses from the bulk while the other is produced at the nanoparticle surface, e.g., by light conversion. We find that in both scenarios the total catalytic rate has the same mathematical structure, once diffusion rates are properly redefined. Moreover, the diffusional fluxes of the different reactants are strongly coupled, providing a behavior richer than that arising in unimolecular reactions. We also show that, in stark contrast to bulk reactions, the identification of a limiting reactant is not simply determined by the relative bulk concentrations but is controlled by the nanoreactor shell permeability. Finally, we describe an application of our theory by analyzing experimental data on the reaction between hexacyanoferrate(III) and borohydride ions in responsive hydrogel-based core shell nanoreactors.
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