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Gate- and flux-tunable sin(2$\varphi$) Josephson element with proximitized Ge-based junctions
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abstract
Hybrid superconductor-semiconductor Josephson field-effect transistors (JoFETs) function as Josephson junctions with a gate-tunable critical current. Additionally, they can feature a non-sinusoidal current-phase relation (CPR) containing multiple harmonics of the superconducting phase difference, a so-far underutilized property. In this work, we exploit this multi-harmonicity to create a Josephson circuit element with an almost perfectly $\pi$-periodic CPR, indicative of a largely dominant charge-4e supercurrent transport. Such a Josephson element was recently proposed as the basic building block of a protected superconducting qubit. Here, it is realized using a superconducting quantum interference device (SQUID) with low-inductance aluminum arms and two nominally identical JoFETs. The latter are fabricated from a SiGe/Ge/SiGe quantum-well heterostructure embedding a high-mobility two-dimensional hole gas. By carefully adjusting the JoFET gate voltages and finely tuning the magnetic flux through the SQUID close to half a flux quantum, we achieve a regime where the $\sin(2\varphi)$ component accounts for more than \SI{95}{\percent} of the total supercurrent. This result demonstrates a new promising route for the realization of superconducting qubits with enhanced coherence properties.
Forward citations
Cited by 2 Pith papers
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Effect of 2$^\text{nd}$ harmonic current--phase relation on a behavior of a Josephson Traveling Wave Parametric Amplifier
A Josephson traveling-wave parametric amplifier with a second-harmonic current-phase relation reaches about 13 dB gain at an optimal harmonic weight g = -0.6, without dispersion engineering.
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Theory of superconducting proximity effect in hole-based hybrid semiconductor-superconductor devices
The paper derives effective superconducting pairing terms for a proximitized germanium two-dimensional hole gas, predicting anisotropic, momentum-dependent singlet and triplet pairings, f-type superconductivity, and B...
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