Anisotropic electron-nuclear interactions in a rotating quantum spin
bath
- URL: http://arxiv.org/abs/2105.07365v1
- Date: Sun, 16 May 2021 06:15:00 GMT
- Title: Anisotropic electron-nuclear interactions in a rotating quantum spin
bath
- Authors: Alexander A. Wood, Russell M. Goldblatt, Russell P. Anderson, Lloyd C.
L. Hollenberg, Robert E. Scholten, Andy M. Martin
- Abstract summary: Spin-bath interactions are strongly anisotropic, and rapid physical rotation has long been used in solid-state nuclear magnetic resonance.
We show that the interaction between electron spins of nitrogen-vacancy centers and a bath of $13$C nuclear spins introduces decoherence into the system.
Our findings offer new insights into the use of physical rotation for quantum control with implications for quantum systems having motional and rotational degrees of freedom that are not fixed.
- Score: 55.41644538483948
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: The interaction between a central qubit spin and a surrounding bath of spins
is critical to spin-based solid state quantum sensing and quantum information
processing. Spin-bath interactions are typically strongly anisotropic, and
rapid physical rotation has long been used in solid-state nuclear magnetic
resonance to simulate motional averaging of anisotropic interactions, such as
dipolar coupling between nuclear spins. Here, we show that the interaction
between electron spins of nitrogen-vacancy centers and a bath of $^{13}$C
nuclear spins in a diamond rotated at up to 300,000rpm introduces decoherence
into the system via frequency-modulation of the nuclear spin Larmor precession.
The presence of an off-axis magnetic field necessary for averaging of the
dipolar coupling leads to a rotational dependence of the electron-nuclear
hyperfine interaction, which cannot be averaged out with experimentally
achievable rotation speeds. Our findings offer new insights into the use of
physical rotation for quantum control with implications for quantum systems
having motional and rotational degrees of freedom that are not fixed.
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