Diffusion-influenced reactions in a hollow nano-reactor with a circular hole
Francesco Piazza, Sergey D. Traytak

TL;DR
This paper models diffusion-influenced reactions within a hollow spherical nano-reactor with a circular hole, providing analytical solutions for reaction rates applicable to nanotechnology and biotechnology applications.
Contribution
It introduces a comprehensive model for reactions in hollow nanostructures with arbitrary hole sizes, including a simple approximation for narrow holes.
Findings
Reaction rate constant can be accurately computed for any aperture size.
Narrow holes allow a simple formula to approximate the reaction rate.
Model is applicable to experimental data analysis in nanoreactor design.
Abstract
Hollow nanostructures are paid increasing attention in many nanotechnology-related communities in view of their numerous applications in chemistry and biotechnology, e.g. as smart nanoreactors or drug-delivery systems. In this paper we consider irreversible, diffusion-influenced reactions occurring within a hollow spherical cavity endowed with a circular hole on its surface. Importantly, our model is not limited to small sizes of the aperture. In our scheme, reactants can freely diffuse inside and outside the cavity through the hole, and react at a spherical boundary of given size encapsulated in the chamber and endowed with a given intrinsic rate constant. We work out the solution of the above problem, enabling one to compute the reaction rate constant to any desired accuracy. Remarkably, we show that, in the case of narrow holes, the rate constant is extremely well-approximated by a…
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