4.8 Article

Chemotaxis of Active Janus Nanoparticles

Journal

NANO LETTERS
Volume 18, Issue 9, Pages 5345-5349

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.8b02572

Keywords

Chemotaxis; self-phoresis; chemically active particles; diffusion; nanoparticles; targeted delivery

Funding

  1. Volkswagen Foundation

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While colloids and molecules in solution exhibit passive Brownian motion, particles that are partially covered with a catalyst, which promotes the transformation of a fuel dissolved in the solution, can actively move. These active Janus particles are known as chemical nanomotors or self-propelling swimmers and have been realized with a range of catalysts, sizes, and particle geometries. Because their active translation depends on the fuel concentration, one expects that active colloidal particles should also be able to swim toward a fuel source. Synthesizing and engineering nanoparticles with distinct chemotactic properties may enable important developments, such as particles that can autonomously swim along a pH gradient toward a tumor. Chemotaxis requires that the particles possess an active coupling of their orientation to a chemical gradient. In this Perspective we provide a simple, intuitive description of the underlying mechanisms for chemotaxis, as well as the means to analyze and classify active particles that can show positive or negative chemotaxis. The classification provides guidance for engineering a specific response and is a useful organizing framework for the quantitative analysis and modeling of chemotactic behaviors. Chemotaxis is emerging as an important focus area in the field of active colloids and promises a number of fascinating applications for nanoparticles and particle-based delivery.

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