An actively-shielded coil inside three mu-metal layers produces a magnetic field uniform to better than 1 nanotesla over a meter-long precession volume, enabling a projected 40-fold reduction in magnetic-field-related systematics for the ACME III electron EDM search.
Theories and Experiments for Testable Baryogenesis Mechanisms: A Snowmass White Paper
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abstract
The baryon asymmetry of the Universe is one of the central motivations to expect physics beyond the Standard Model. In this Snowmass white paper, we review the challenges and opportunities in testing some of the central paradigms that predict physics at scales low enough to expect new experimental data in the next decade. Focusing on theoretical ideas and some of their experimental implications, in particular, we discuss neutron-antineutron transformations, flavor observables, next generation colliders, future neutron facilities, gravitational waves, searches for permanent electric dipole moments, $0\nu \beta \beta $ decay and some future large underground experiments as methods to test post-sphaleron baryogenesis, electroweak baryogenesis, mesogenesis and low scale leptogenesis. Finally, we comment on the cases where high scale physics can be probed through some of these same mechanisms.
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Compact Actively-Shielded Magnetic Field Coil within Mu-Metal Shields for ACME Electric Dipole Moment Measurements
An actively-shielded coil inside three mu-metal layers produces a magnetic field uniform to better than 1 nanotesla over a meter-long precession volume, enabling a projected 40-fold reduction in magnetic-field-related systematics for the ACME III electron EDM search.