MAGNETIC-FIELD SHIELD WITH DRIVE MAGNET
20220159883 · 2022-05-19
Inventors
Cpc classification
H01J41/12
ELECTRICITY
G21K1/006
PHYSICS
International classification
Abstract
A magnetic-field shield is used to shield a magneto-optical trap (MOT) in an ultra-high vacuum (UHV) cell from magnetic fields generated by an ion pump used to maintain the UHV. The magnetic-field shield includes an enclosure of ferro-magnetic material that acts to capture portions of the magnetic field generated by the ion pump. However, as the distance between the ion pump and the MOT is less than 6 centimeters, enough of the magnetic field escapes through the ferro-magnetic material, and this leakage could impair the MOT. A drive magnet attached to the yoke redirects magnetic flux, that would otherwise leak out of the magnetic-field shield, along a path within the ferro-magnetic enclosure and away from the MOT.
Claims
1. A magnetic-field shield system comprising: a ferro-magnetic enclosure defining an interior and an exterior; and a drive magnet set arranged to redirect magnetic flux density, which would otherwise extend to the exterior, along a path within the ferro-magnetic material and not extending to the exterior, the magnetic flux density being associated with a magnetic field generated in the interior, the drive magnet set including at least one permanent magnet.
2. The magnetic-field shield system of claim 1 wherein the ferro-magnetic enclosure encloses a pair of permanent magnets that collectively generate the magnetic field.
3. The magnetic-field shield system of claim 1 wherein the ferro-magnetic enclosure encloses an ion pump, the ion pump including a pair of permanent magnets that collectively generate the magnetic field.
4. The magnetic-field shield system of claim 1 further comprising an ultra-high vacuum (UHV) cell defining a work chamber, an ion pump, and a channel from the work chamber to the ion pump, the ion pump being located in the interior and the work chamber being located in the exterior, the ion pump including a pair of permanent magnets that collectively generate the magnetic field.
5. The magnetic-field shield system of claim 4 wherein the work chamber includes a trap for ions or neutral atoms, the permanent drive magnet helping the ferro-magnetic enclosure isolate the trap from the magnetic field generated by the pair of permanent magnets.
6. The magnetic-field shield system of claim 5 wherein a distance between the trap and the ion pump is less than 10 times a characteristic diameter of the pumping volume.
7. The magnetic-field shield system of claim 5 wherein a distance between the trap and the ion pump is less than 6 centimeters.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0011] In accordance with the present invention, a magnetic-field shield includes one or more permanent magnets along with ferro-magnetic material so that magnetic fields that would otherwise extend beyond the shield are retained in the ferro-magnetic material. As a result, objects outside the shielding can be better protected from magnetic fields established in the interior of the shield.
[0012] Efforts are underway to make more compact UHV systems. UHV systems tend to be incorporated in other systems, the dimensions of which may scale with the size of the UHV system. Smaller UHV systems enable the incorporating systems to be more portable and less expensive. However, as UHV systems become smaller, ion pumps used to maintain UHV conditions become closer to the UHV cell, and the magnetic fields associated with the ion pump can adversely affect delicate fields (e.g., those associated with magneto-optical traps) in the UHV cell. While magnetic shielding around the ion pump magnets can be used help isolate them from the UHV cell, there is typically some leakage. The present invention minimizes this leakage so as to improve the effectiveness of compact UHV systems.
[0013] Magnetic shields are shown both with and without a drive magnet set of one or more permanent magnets in
[0014] Magnetic shield 150 includes a ferromagnetic enclosure 152 with a drive magnet 154 arranged to tighten the paths of magnetic flux 110 and 112 such that magnetic flux 112 is retained within the ferro-magnetic enclosure 152 of magnetic shield 150. As a result, magnetic flux density 50 mm away due to magnets 102 and 104 is reduced to approximately 5% of that associated with unenhanced shield 100. While magnetic shield 150 includes a single drive magnet, other embodiments use plural drive magnets.
[0015] A UHV system 200 is shown in
[0016] Ion pump 204 is shown in greater detail in
[0017] Power supply 306 applies a voltage differential, e.g., 5-6 kilovolts (kV) direct current (DC), between anode 302 and cathodes 304. This voltage differential draws electrons from cathodes 304 toward anode 302. Magnetic field 106 (
[0018] A challenge addressed by the present invention is to prevent magnetic fields produced by ion-pump magnets 102 and 104 from disturbing processes in chamber 202 (
[0019] The effectiveness of shield 150 is indicated by the graphs 510, 530, and 550 of
[0020] Graph 130 represents the magnetic flux density at the MOT when shield 100 (with no drive magnets) is used. At x=0, the magnetic flux density is 1.55×10-1 G or 155 milliGauss (mG). Graph 150 represents the magnetic flux density at magneto-optical trap (MOT) 208 (
[0021] Graph 600 of
[0022] Herein, “ion pump” refers to any system that removes mobile molecules (including monatomic molecules) from a local (incomplete) vacuum by:
1) ionizing the molecules to yield ions; and 2) immobilizing the ions by sorbing (adsorbing or absorbing) them to a “getter” material. Herein, “molecule” refers to the smallest particle in a chemical element or compound that has the chemical properties of that element or compound. Herein, a ferro-magnetic enclosure defines an interior and exterior even in cases where the enclosure is incomplete in that it is “interrupted”, e.g., to provide a channel to an ion pump.
[0023] Herein, any art labeled “prior art”, if any, is admitted prior art; any art not labeled “prior art”, if any, is not admitted prior art. The illustrated embodiments, variations thereupon and modifications thereto are provided for by the present invention, the scope of which is defined by the following claims.