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Updated: Apr 24, 2026

Preparation and 3D Tracking of Catalytic Swimming Devices
Published on: July 1, 2016
Propulsion Mechanism of Catalytic Microjet Engines
Vladimir M Fomin1, Markus Hippler2, Veronika Magdanz3
1Institute for Integrative Nanosciences, Leibniz Institute for Solid State and Materials Research Dresden, Dresden 01069, Germany ( v.fomin@ifw-dresden.de ).
Abstract:
We describe the propulsion mechanism of the catalytic microjet engines that are fabricated using rolled-up nanotech. Microjets have recently shown numerous potential applications in nanorobotics but currently there is a lack of an accurate theoretical model that describes the origin of the motion as well as the mechanism of self-propulsion. The geometric asymmetry of a tubular microjet leads to the development of a capillary force, which tends to propel a bubble toward the larger opening of the tube. Because of this motion in an asymmetric tube, there emerges a momentum transfer to the fluid. In order to compensate this momentum transfer, a jet force acting on the tube occurs. This force, which is counterbalanced by the linear drag force, enables tube velocities of the order of 100 microm/s. This mechanism provides a fundamental explanation for the development of driving forces that are acting on bubbles in tubular microjets.
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