IP Library Granted Patent US 12,640,355
Granted Patent B2
US 12,640,355 · App. 18/321,979 · Granted May 26, 2026

Ion trap with reduced radio frequency (RF) currents using multiple feed ports

Inventors: Adam Reed (Broomfield, CO); Matthew D. Swallows (Broomfield, CO); Christopher Eugene Langer (Highlands Ranch, CO)
Assignee: QUANTINUUM LLC
H01J49/022H01J49/424
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,640,355
App. No.
18/321,979
Granted
May 26, 2026
Kind
B2
Abstract

Various embodiments provide ion traps or systems comprising ion traps that comprise a trapping portion and a radio frequency (RF) border electrode bounding the trapping portion. The RF border electrode comprises or is in electrical communication with a plurality of feed ports. In an example embodiment, the ion trap comprises a plurality of unit cells each comprising a respective trapping portion, a respective RF border electrode bounding the respective trapping portion, and a respective feed port of the plurality of feed ports.

Claims (22)

1 . An ion trap comprising:

a trapping portion comprising one or more RF rails and one or more sequences of segmented electrodes; and

a radio frequency (RF) border electrode bounding the trapping portion, wherein the RF border electrode comprises or is in electrical communication with a plurality of feed ports.

2 . The ion trap of claim 1 , wherein each of the plurality of feed ports is configured to apply a respective RF current and/or voltage signal of a plurality of RF current and/or voltage signals to the RF border electrode.

3 . The ion trap of claim 2 , wherein the plurality of RF current and/or voltage signals are synchronized in frequency.

4 . The ion trap of claim 2 , wherein respective positions of the plurality of feed ports and respective phases of the plurality of RF current and/or voltage signals are configured such that a phase of a current density driven in the RF border electrode by application of the plurality of RF current and/or voltage signals to the RF border electrode by the plurality of feed ports is continuous at all points of the RF border electrode.

5 . The ion trap of claim 4 , wherein the phase of the current density is smooth across at all the points of the RF border electrode.

6 . The ion trap of claim 2 , wherein the plurality of RF current and/or voltage signals are synchronized in phase.

7 . The ion trap of claim 2 , wherein each of the plurality of feed ports is configured to be in electrical communication with a respective RF source of one or more RF sources.

8 . The ion trap of claim 7 , wherein the one or more RF sources comprises a plurality of RF sources and each of the plurality of RF sources is (a) frequency-locked to at least one other of the plurality of RF sources, (b) frequency-locked to a common reference, or (c) frequency-locked to at least one of a set of coupled references.

9 . The ion trap of claim 1 , wherein each of the plurality of feed ports is configured to be in electrical communication with a respective RF source of one or more RF sources, each of the one or more RF sources configured to generate a respective RF current and/or voltage signal such that the respective feed port applies the respective RF current and/or voltage signal to the RF border electrode.

10 . The ion trap of claim 9 , wherein application of the respective RF current and/or voltage signal by the respective feed port causes an RF current density to be driven in the RF border electrode.

11 . The ion trap of claim 10 , wherein the RF current density is less than a single feed port current density that would be required to operate the ion trap if the ion trap only comprises a single feed port.

12 . The ion trap of claim 1 , wherein the plurality of feed ports are disposed at respective positions about the RF border electrode such that the respective positions are symmetric with respect to at least one axis defined by the RF border electrode.

13 . The ion trap of claim 1 , wherein the ion trap comprises a plurality of unit cells, each unit cell comprising a respective trapping portion, a respective RF border electrode, and a respective feed port of the plurality of feed ports.

14 . The ion trap of claim 13 , wherein the plurality of unit cells are a tiling of the ion trap.

15 . The ion trap of claim 13 , wherein each unit cell of the plurality of unit cells characterizes (a) a length that is less than or equal to a threshold length when the respective trapping portion comprises a one-dimensional configuration of linear trapping regions, (b) an area that is less than or equal to a threshold area when the respective trapping portion comprises a two-dimensional configuration of linear trapping regions, or (c) a volume that is less than or equal to a threshold volume when the respective trapping portion comprises a three-dimensional configuration of linear trapping regions.

16 . The ion trap of claim 13 , wherein a portion of the respective RF border electrode of a first unit cell and a portion of the respective RF border electrode of a second unit cell that is an immediate neighbor of the first unit cell is a same physical electrode.

17 . The ion trap of claim 1 , wherein the plurality of feed ports are configured to reduce the conductive losses of the ion trap when the ion trap is operated.

18 . The ion trap of claim 1 wherein the RF border electrode is (a) a continuous RF electrode or (b) comprises two or more electrically distinct RF electrodes.

19 . The ion trap of claim 1 , wherein the ion trap is part of a quantum charge-coupled device (QCCD)-based quantum computer and manipulatable objects confined by the ion trap are used as qubits of the QCCD-based quantum computer.

20 . The ion trap of claim 1 , wherein each of the plurality of feed ports is configured to be in electrical communication with a respective RF source of one or more RF sources and a controller of the QCCD-based quantum computer is configured to control operation of the one or more RF sources.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 23, 2023
From: REED, ADAM; SWALLOWS, MATTHEW D.; LANGER, CHRISTOPHER EUGENE
To: QUANTINUUM LLC
Reel/Frame 063728/0745 →
Continuity (2)
Provisional Application 63367774 · Jul 6, 2022
Related Publication 20240014023A1 · Jan 11, 2024
References Cited (18)
US 10804871B1 · Reed et al. · 2020 [cited by applicant]
US 11037776B1 · Makotyn et al. · 2021 [cited by applicant]
US 20190304765A1 · Hoyes · 2019 [cited by examiner]
US 20230187095A1 · Volin et al. · 2023 [cited by applicant]
JP 2019160795A · 2019 [cited by applicant]
WO 2021092233A1 · 2021 [cited by applicant]
WO 2021205145A1 · 2021 [cited by applicant]
Johnson, Nicholas Ian, “A scalable demonstrator for trapped-ion quantum computing using modules connected by electric fields”, Ph.D. Thesis for University of Sussex, Oct. 1, 2021, retrieved from the Internet at https://… [cited by applicant]
Outgoing—ISA/210—International Search Report Mailed on Dec. 19, 2024 for WO Application No. PCT/US23/026970, 7 page(s). [cited by applicant]
Outgoing Written Opinion of the ISA Mailed on Dec. 19, 2024 for WO Application No. PCT/US23/026970, 12 page(s). [cited by applicant]
Gan, H. C. J. , et al., “Oscillating magnetic field effects in high precision metrology,” Jul. 7, 2018, retrieved from Cornell University Online Library Archive on the Internet at https://arxiv.org/pdf/1807.00424.pdf on… [cited by applicant]
Holz, Philip C., et al., “2D Linear Trap Array for Quantum Information Processing”, Advanced Quantum Technologies, Sep. 16, 2020, 20 pages, vol. 3, No. 2000031, Wiley-VCH GmbH, Germany. [cited by applicant]
Hughes, Marcus D., et al., “Microfabricated Ion Traps”, Jun. 28, 2011, retrieved from Cornell University Online Library Archive on the Internet at https://arxiv.org/pdf/1101.3207.pdf on Mar. 5, 2024, 28 pages. [cited by applicant]
Kumph, M., et al., “Operation of a planar-electrode ion-trap array with adjustable RF electrodes,” New Journal of Physics, Feb. 19, 2016, 16 pages, vol. 18, No. 023047, IOP Publishing Ltd and Deutsche Physikalische Gese… [cited by applicant]
Pino, J. M. “Demonstration of the trapped-ion quantum-CCD computer architecture,” Apr. 9, 2021, retrieved from Cornell University Online Library Archive on the Internet at https://arxiv.org/pdf/2003.01293v4.pdf on Mar. … [cited by applicant]
U.S. Provisional Application for “Atomic Object Confinement Apparatus with Radio Frequency Electrode Shaping for Periodic Boundary Conditions”, unpublished (filed Dec. 10, 2021), Curtis Volin (Inventor), Quantinuum LLC … [cited by applicant]
English Translation of JP Office Action dated Mar. 24, 2026 for JP Application No. 2025500158, 2 page(s). [cited by applicant]
JP Office Action Mailed on Mar. 24, 2026 for JP Application No. 2025500158, 3 page(s). [cited by applicant]