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A dressed singlet-triplet qubit in germanium

Authors :
Tsoukalas, Konstantinos
von Lüpke, Uwe
Orekhov, Alexei
Hetényi, Bence
Seidler, Inga
Sommer, Lisa
Kelly, Eoin G.
Massai, Leonardo
Aldeghi, Michele
Pita-Vidal, Marta
Hendrickx, Nico W.
Bedell, Stephen W.
Paredes, Stephan
Schupp, Felix J.
Mergenthaler, Matthias
Salis, Gian
Fuhrer, Andreas
Harvey-Collard, Patrick
Publication Year :
2025

Abstract

In semiconductor hole spin qubits, low magnetic field ($B$) operation extends the coherence time ($T_\mathrm{2}^*$) but proportionally reduces the gate speed. In contrast, singlet-triplet (ST) qubits are primarily controlled by the exchange interaction ($J$) and can thus maintain high gate speeds even at low $B$. However, a large $J$ introduces a significant charge component to the qubit, rendering ST qubits more vulnerable to charge noise when driven. Here, we demonstrate a highly coherent ST hole spin qubit in germanium, operating at both low $B$ and low $J$. By modulating $J$, we achieve resonant driving of the ST qubit, obtaining an average gate fidelity of $99.68\%$ and a coherence time of $T_\mathrm{2}^*=1.9\,\mu$s. Moreover, by applying the resonant drive continuously, we realize a dressed ST qubit with a tenfold increase in coherence time ($T_\mathrm{2\rho}^*=20.3\,\mu$s). Frequency modulation of the driving signal enables universal control, with an average gate fidelity of $99.64\%$. Our results demonstrate the potential for extending coherence times while preserving high-fidelity control of germanium-based ST qubits, paving the way for more efficient operations in semiconductor-based quantum processors.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2501.14627
Document Type :
Working Paper