arXiv · 1810.09295
Building a Casimir Metrology Platform with a Commercial MEMS Accelerometer
Abstract
The Casimir Effect is a physical manifestation of quantum fluctuations of the electromagnetic vacuum. When two metal plates are placed closely together, typically much less than a micron, the long wavelength modes between them are frozen out, giving rise to a net attractive force between the plates, scaling as d^-4 (or d^-3 for a spherical-planar geometry) even when they are not electrically charged. In this paper we observe the Casimir Effect in ambient conditions using a modified capacitive MEMS accelerometer. Using a feedback assisted pick-and-place assembly process we are able to attach various micro-structures onto the post-release MEMS, converting it from an inertial force sensor to a direct force measurement platform with pN resolution. With this system we are able to directly measure the Casimir force between a silver-coated microsphere and gold-coated silicon plate. This device is a step towards leveraging the Casimir Effect for cheap, sensitive, room temperature quantum metrology.
Explore related subjects
Keep this discovery
Alexander Stange, Matthias Imboden, Josh Javor, Lawrence K. Barrett, David J. Bishop. 2018-10-22. Building a Casimir Metrology Platform with a Commercial MEMS Accelerometer. https://arxiv.org/abs/1810.09295
Cite the original work for its findings. Save a collection to share your selection of sources.