Ultra-low damping of the translational motion of a composite graphite rod in a magneto-gravitational trap
Abstract
We demonstrate an ultra-low dissipation, one-dimensional mechanical oscillator formed by levitating a millimeter-scale composite graphite rod in a room-temperature magneto-gravitational trap. The trap's magnetic field geometry, based on a linear quadrupole, eliminates first-order field gradients in the axial direction, yielding a low oscillation frequency with ultra-low eddy-current losses. Direct ringdown measurements under vacuum compare the damping of the vertical and axial motion; while the vertical motion damps in seconds, the axial motion damps with a time constant of over 5 days. Analysis reveals that this dramatic difference in damping is a result of the symmetry of the magnetic field and the anisotropy of the trap strength. The results are remarkably robust, demonstrating a potential platform for inertial and gravitational sensing.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (8)
Connor E. Murphy
Department of Physics, Montana State University 1 , Bozeman, Montana 59717,
Cody Jessup
Department of Physics, Montana State University 1 , Bozeman, Montana 59717,
Tahereh Naderishahab
Department of Physics, Montana State University 1 , Bozeman, Montana 59717,
Yateendra Sihag
Department of Physics, Montana State University 1 , Bozeman, Montana 59717,
Max M. Fields
Department of Physics, Montana State University 1 , Bozeman, Montana 59717,
Leonardo R. Werneck
Department of Physics, University of Idaho 2 , Moscow, Idaho 83844,
Zachariah B. Etienne
Department of Physics, University of Idaho 2 , Moscow, Idaho 83844,
Brian D'Urso
Department of Physics, Montana State University 1 , Bozeman, Montana 59717,