IP Library › Granted Patent US 12,603,710
Granted Patent B2
US 12,603,710 · App. 18/288,139 · Granted Apr 14, 2026

Optical drive for qubits

Inventor: Pasi Lähteenmäki (Espoo, FI)
Assignee: IQM FINLAND OY
H04B10/70G06N10/40H04B10/2575
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Quick Facts
Patent No.
US 12,603,710
App. No.
18/288,139
Granted
Apr 14, 2026
Kind
B2
Abstract

Example embodiments relate to delivery of qubit drive signals to a cryogenic environment of a quantum computer. Qubit drive signal(s) may be conveyed to the cryogenic environment as optical signal(s). The optical signal(s) may be transduced to radio frequency signal(s) at the cryogenic environment for driving qubit(s). Apparatuses and methods are disclosed.

Claims (42)

1 . An apparatus, comprising:

at least one electro-optic modulator configured to modulate at least one optical signal with at least one input radio frequency signal at a non-cryogenic environment of a quantum computer;

at least one optical fiber configured to convey the at least one optical signal to a cryogenic environment of the quantum computer;

at least one optomechanical transducer configured to transduce the at least one optical signal to at least one radio frequency signal at the cryogenic environment of the quantum computer; and

driving circuitry configured to drive at least one qubit of the quantum computer based on the at least one radio frequency signal.

2 . The apparatus according to claim 1 , further comprising:

at least one optical isolator at the non-cryogenic environment of the quantum computer, wherein the at least one optical isolator is located optically between the at least one electro-optic modulator and the at least one optomechanical transducer, and wherein the at least one optical isolator is configured to dissipate energy received from the cryogenic environment.

3 . The apparatus according to claim 1 , wherein the at least one optical fiber is configured to convey a plurality of optical signals to the cryogenic environment of the quantum computer, the apparatus comprising:

a plurality of optomechanical transducers configured to transduce the plurality of optical signals to a plurality of radio frequency signals at the cryogenic environment of the quantum computer, wherein the driving circuitry is configured to drive a plurality of qubits based on the plurality of radio frequency signals.

4 . The apparatus according to claim 3 , further comprising:

a plurality of electro-optical modulators configured to modulate the plurality of optical signals with a plurality of input radio frequency signals at a non-cryogenic environment of the quantum computer.

5 . The apparatus according to claim 3 , further comprising:

a multiplexer configured to multiplex the plurality of optical signals to an optical fiber configured to convey the plurality of optical signals to the cryogenic environment of the quantum computer.

6 . The apparatus according to claim 5 , further comprising:

a demultiplexer configured to demultiplex the plurality of optical signals from the optical fiber at the cryogenic environment of the quantum computer.

7 . The apparatus according to claim 6 , wherein the multiplexer comprises a wavelength division multiplexer and/or wherein the demultiplexer comprises a wavelength division demultiplexer.

8 . The apparatus according to claim 5 , further comprising:

a plurality of optical isolators at a non-cryogenic environment of the quantum computer, wherein the plurality of optical isolators are located optically between the multiplexer and respective electro-optic modulators, and wherein the plurality of optical isolators are configured to dissipate energy received from the cryogenic environment via the optical fiber.

9 . A method, comprising:

modulating at least one optical signal with at least one input radio frequency signal at a non-cryogenic environment of a quantum computer;

conveying the at least one optical signal to a cryogenic environment of the quantum computer;

transducing the at least one optical signal to at least one radio frequency signal at the cryogenic environment of the quantum computer; and

driving at least one qubit based on the at least one radio frequency signal.

10 . The method according to claim 9 , further comprising:

transducing the at least one optical signal to the at least one radio frequency signal by at least one optomechanical transducer at the cryogenic environment of the quantum computer.

11 . The method according to claim 9 , further comprising:

modulating the at least one optical signal with the at least one input radio frequency signal by at least one electro-optic modulator.

12 . The method according to claim 11 , further comprising:

providing at least one optical isolator at the non-cryogenic environment of the quantum computer, wherein the at least one optical isolator is provided optically between the at least one electro-optic modulator and at least one optomechanical transducer for dissipating energy received from the cryogenic environment.

13 . The method according to claim 9 , further comprising:

conveying a plurality of optical signals to the cryogenic environment of the quantum computer;

transducing the plurality of optical signals to a plurality of radio frequency signals at the cryogenic environment of the quantum computer; and

driving a plurality of qubits based on the plurality of radio frequency signals.

14 . The method according to claim 13 , further comprising:

modulating the plurality of optical signals with a plurality of input radio frequency signals at non-cryogenic environment of the quantum computer.

15 . The method according to claim 13 , further comprising:

multiplexing, by a multiplexer, the plurality of optical signals to an optical fiber configured to convey the plurality of optical signals to the cryogenic environment of the quantum computer.

16 . The method according to claim 15 , further comprising:

demultiplexing, by a demultiplexer, the plurality of optical signals from the optical fiber at the cryogenic environment of the quantum computer.

17 . The method according to claim 16 , wherein the multiplexer comprises a wavelength division multiplexer and/or wherein the demultiplexer comprises a wavelength division demultiplexer.

18 . The method according to claim 15 , further comprising:

providing a plurality of optical isolators at non-cryogenic environment of the quantum computer, wherein the plurality of optical isolators are provided optically between the multiplexer and respective electro-optic modulators for dissipating energy received from the cryogenic environment via the optical fiber.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 25, 2023
From: LÄHTEENMÄKI, PASI
To: IQM FINLAND OY
Reel/Frame 065343/0566 →
Continuity (1)
Related Publication 20240204885A1 · Jun 20, 2024
References Cited (19)
US 20180062761A1 · Wade et al. · 2018 [cited by applicant]
US 20190007051A1 · Sete · 2019 [cited by examiner]
US 20190027800A1 · El Bouayadi · 2019 [cited by examiner]
US 20190181325A1 · Hertzberg · 2019 [cited by examiner]
US 20200412457A1 · Bronn · 2020 [cited by examiner]
US 20210350270A1 · Jones · 2021 [cited by examiner]
US 20220222567A1 · Reagor · 2022 [cited by examiner]
NL 2016081B1 · 2017 [cited by applicant]
WO 2020154745A1 · 2020 [cited by applicant]
WO 2020260251A1 · 2020 [cited by applicant]
Lecocq, F., Quinlan, F., Cicak, K. et al. Control and readout of a superconducting qubit using a photonic link. Nature 591, 575-579 (2021). https://doi.org/10.1038/s41586-021-03268-x. (Year: 2021). [cited by examiner]
Notification of reasons for refusal in connection to JP Application No. 2023-56666, dated Jan. 21, 2025. [cited by applicant]
Lecocq et al., Control and readout of a superconducting qubit using a photonic link, Nature, vol. 591, No. 7851, pp. 575-579, 2021. [cited by applicant]
Mckenna et al., Cryogenic microwave-to-optical conversion using a triply-resonant lithium niobate on sapphire transducer, Optica, pp. 1-15, 2020. [cited by applicant]
Forsch et al., Microwave-to-optics conversion using a mechanical oscillator in its quantum grounstate, Nature Phys., 19, 69-74, 2020. [cited by applicant]
Andrews et al., Bidirectional and efficient conversion between microwave and optical light, Nature Phys., 10, 321-326, 2014. [cited by applicant]
Mirhosseini et al., Superconducting qubit to optical photon transduction, Nature, 16 pages, 2020. [cited by applicant]
International Search Report and Written Opinion issued in PCT/FI2021/050317, mailed Jan. 28, 2022. [cited by applicant]
Lin et al., Electrically tunable-focusing and polarizer-free liquid crystal lenses for ophthalmic applications, Optics Express, vol. 21, No. 8, 2013, pp. 9428-9436. [cited by applicant]