The singlet-triplet and exchange-only flopping-mode spin qubits
- URL: http://arxiv.org/abs/2503.05032v1
- Date: Thu, 06 Mar 2025 23:12:12 GMT
- Title: The singlet-triplet and exchange-only flopping-mode spin qubits
- Authors: Simon Stastny, Guido Burkard,
- Abstract summary: Semiconductor-based spin qubits embedded into a superconducting microwave cavity constitute a fast-progressing and promising platform for qubit control.<n>We propose two new flopping-mode qubits that consist of three (four) quantum dots, occupied by two electrons near the (1,0,1) - (0,1,1) [ (1,0,1,1) -- (0,1,1,1)] charge transition.<n>The longitudinal coupling distinguishes the flopping-mode ST qubit from the regular flopping-mode qubit.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Semiconductor-based spin qubits embedded into a superconducting microwave cavity constitute a fast-progressing and promising platform for realizing fast and fault-tolerant qubit control with long-range two-qubit coupling. The flopping-mode spin qubit consists of a single electron in a double quantum dot; it combines a charge qubit with a spin qubit. With its strong and tunable cavity coupling, the flopping-mode qubit is proven to be well-suited for low-power qubit control and cavity-mediated long-range quantum gates. The singlet-triplet (ST) and exchange-only (EO) qubits are multi-electron realizations that go without broadband control and are protected from some types of noise, but are challenging to couple to each other and to microwave cavities. We combine the flopping-mode concept with the ST and EO qubits and propose two new flopping-mode qubits that consist of three (four) quantum dots, occupied by two (three) electrons near the (1,0,1) - (0,1,1) [(1,0,1,1) -- (0,1,1,1)] charge transition. The two-electron system augments the $ST_0$ spin qubit with a charge qubit that interacts transversally and longitudinally with a cavity. Both couplings are highly tunable, and the longitudinal coupling distinguishes the flopping-mode ST qubit from the regular flopping-mode qubit. The longitudinal coupling allows for non-dissipative universal control similar to superconducting transmon qubits. The EO flopping-mode qubit comprises four dots occupied by three electrons and opens a new possibility to perform two-qubit gates for EO qubits that are challenging to perform directly with the exchange coupling. We use input-output theory to provide means of extracting the coupling strengths from cavity transmission data.
Related papers
- Realization of two-qubit gates and multi-body entanglement states in an asymmetric superconducting circuits [3.9488862168263412]
We propose a tunable fluxonium-transmon-transmon (FTT) cou pling scheme.
The asymmetric structure composed of fluxonium and transmon will optimize the frequency space and form a high fidelity two-qubit quantum gate.
We study the performance of this scheme by simulating the general single-qubit Xpi/2 gate and two-qubit (iSWAP) gate.
arXiv Detail & Related papers (2024-04-12T08:44:21Z) - Tunable coupler to fully decouple and maximally localize superconducting
qubits [0.0]
We propose a new coupler model that allows to fully decouple dispersively detuned Transmon qubits from each other.
We show that our scheme can be applied to large integrated qubit grids.
arXiv Detail & Related papers (2023-06-29T15:04:36Z) - A high on-off ratio beamsplitter interaction for gates on bosonically
encoded qubits [40.96261204117952]
A qubit in a high quality superconducting microwave cavity offers the opportunity to perform the first layer of error correction in a single device.
We use a 3-wave mixing coupling element to engineer a programmable beamsplitter interaction between two bosonic modes separated by more than an octave in frequency.
We then introduce a new protocol to realize a hybrid controlled-SWAP operation in the regime $g_bsapproxchi$, in which a transmon provides the control bit for the SWAP of two bosonic modes.
arXiv Detail & Related papers (2022-12-22T18:07:29Z) - An error-protected cross-resonance switch in weakly-tuneable
architectures [0.8702432681310399]
In two-qubit gates activated by microwave pulses, state of qubits are swapped between entangled or idle modes.
In either mode, the presence of stray couplings makes qubits accumulate coherent phase error.
We propose to combine such a gate with a tunable coupler and show that both idle and entangled qubits can become free from stray couplings.
arXiv Detail & Related papers (2022-12-11T14:50:41Z) - High fidelity two-qubit gates on fluxoniums using a tunable coupler [47.187609203210705]
Superconducting fluxonium qubits provide a promising alternative to transmons on the path toward large-scale quantum computing.
A major challenge for multi-qubit fluxonium devices is the experimental demonstration of a scalable crosstalk-free multi-qubit architecture.
Here, we present a two-qubit fluxonium-based quantum processor with a tunable coupler element.
arXiv Detail & Related papers (2022-03-30T13:44:52Z) - Superconducting coupler with exponentially large on-off ratio [68.8204255655161]
Tunable two-qubit couplers offer an avenue to mitigate errors in multiqubit superconducting quantum processors.
Most couplers operate in a narrow frequency band and target specific couplings, such as the spurious $ZZ$ interaction.
We introduce a superconducting coupler that alleviates these limitations by suppressing all two-qubit interactions with an exponentially large on-off ratio.
arXiv Detail & Related papers (2021-07-21T03:03:13Z) - Fast high-fidelity single-qubit gates for flip-flop qubits in silicon [68.8204255655161]
flip-flop qubit is encoded in the states with antiparallel donor-bound electron and donor nuclear spins in silicon.
We study the multilevel system that is formed by the interacting electron and nuclear spins.
We propose an optimal control scheme that produces fast and robust single-qubit gates in the presence of low-frequency noise.
arXiv Detail & Related papers (2021-01-27T18:37:30Z) - Coupling two charge qubits via a superconducting resonator operating in
the resonant and dispersive regimes [5.526775342940154]
We describe a new type of charge qubit formed by an electron confined in a triple-quantum-dot system.
We present the form for the long-range dipolar coupling between the charge qubit and a superconducting resonator.
We find that the fidelity for the iSWAP gate can reach fidelity higher than 99% for the noise level typical in experiments.
arXiv Detail & Related papers (2020-12-28T07:49:41Z) - A natural heavy-hole flopping mode qubit in germanium [0.0]
Flopping mode qubits in double quantum dots (DQDs) allow for coherent spin-photon hybridization and fast qubit gates.
electronic systems rely on synthetic spin-orbit interaction (SOI) by means of a magnetic field gradient as a coupling mechanism.
We show that this challenging experimental setup can be avoided in heavy-hole (HH) systems in germanium (Ge) by utilizing the sizeable cubic Rashba SOI.
arXiv Detail & Related papers (2020-12-18T13:17:52Z) - Modulated longitudinal gates on encoded spin-qubits via curvature
couplings to a superconducting cavity [0.0]
We propose entangling operations based on the energy curvature couplings of encoded spin qubits to a superconducting cavity.
For a two-qubit entangling gate we explore acquired geometric phases via a time-modulated longitudinal $sigma_z$-coupling.
The proposed schemes seem suitable for remote spin-to-spin entanglement of two spin-qubits or a cluster of spin-qubits.
arXiv Detail & Related papers (2020-10-03T00:04:56Z) - Conditional quantum operation of two exchange-coupled single-donor spin
qubits in a MOS-compatible silicon device [48.7576911714538]
Silicon nanoelectronic devices can host single-qubit quantum logic operations with fidelity better than 99.9%.
For the spins of an electron bound to a single donor atom, introduced in the silicon by ion implantation, the quantum information can be stored for nearly 1 second.
Here we demonstrate the conditional, coherent control of an electron spin qubit in an exchange-coupled pair of $31$P donors implanted in silicon.
arXiv Detail & Related papers (2020-06-08T11:25:16Z) - Universal non-adiabatic control of small-gap superconducting qubits [47.187609203210705]
We introduce a superconducting composite qubit formed from two capacitively coupled transmon qubits.
We control this low-frequency CQB using solely baseband pulses, non-adiabatic transitions, and coherent Landau-Zener interference.
This work demonstrates that universal non-adiabatic control of low-frequency qubits is feasible using solely baseband pulses.
arXiv Detail & Related papers (2020-03-29T22:48:34Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.