Strong hole-photon coupling in planar Ge for probing charge degree and strongly-correlated states

Fuente: arXiv
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Hauptverfasser: De Palma, Franco, Oppliger, Fabian, Jang, Wonjin, Bosco, Stefano, Janík, Marián, Calcaterra, Stefano, Katsaros, Georgios, Isella, Giovanni, Loss, Daniel, Scarlino, Pasquale
Format: Preprint
Veröffentlicht: 2023
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author De Palma, Franco
Oppliger, Fabian
Jang, Wonjin
Bosco, Stefano
Janík, Marián
Calcaterra, Stefano
Katsaros, Georgios
Isella, Giovanni
Loss, Daniel
Scarlino, Pasquale
author_facet De Palma, Franco
Oppliger, Fabian
Jang, Wonjin
Bosco, Stefano
Janík, Marián
Calcaterra, Stefano
Katsaros, Georgios
Isella, Giovanni
Loss, Daniel
Scarlino, Pasquale
contents Semiconductor quantum dots (QDs) in planar germanium (Ge) heterostructures have emerged as front-runners for future hole-based quantum processors. Here, we present strong coupling between a hole charge qubit, defined in a double quantum dot (DQD) in planar Ge, and microwave photons in a high-impedance ($Z_\mathrm{r} = 1.3 ~\mathrm{k}Ω$) resonator based on an array of superconducting quantum interference devices (SQUIDs). Our investigation reveals vacuum-Rabi splittings with coupling strengths up to $g_0/2π= 260 ~\mathrm{MHz}$, and a cooperativity of $C \sim 100$, dependent on DQD tuning. Furthermore, utilizing the frequency tunability of our resonator, we explore the quenched energy splitting associated with strong Coulomb correlation effects in Ge QDs. The observed enhanced coherence of the strongly correlated excited state signals the presence of distinct symmetries within related spin functions, serving as a precursor to the strong coupling between photons and spin-charge hybrid qubits in planar Ge. This work paves the way towards coherent quantum connections between remote hole qubits in planar Ge, required to scale up hole-based quantum processors.
format Preprint
id arxiv_https___arxiv_org_abs_2310_20661
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Strong hole-photon coupling in planar Ge for probing charge degree and strongly-correlated states
De Palma, Franco
Oppliger, Fabian
Jang, Wonjin
Bosco, Stefano
Janík, Marián
Calcaterra, Stefano
Katsaros, Georgios
Isella, Giovanni
Loss, Daniel
Scarlino, Pasquale
Quantum Physics
Mesoscale and Nanoscale Physics
Semiconductor quantum dots (QDs) in planar germanium (Ge) heterostructures have emerged as front-runners for future hole-based quantum processors. Here, we present strong coupling between a hole charge qubit, defined in a double quantum dot (DQD) in planar Ge, and microwave photons in a high-impedance ($Z_\mathrm{r} = 1.3 ~\mathrm{k}Ω$) resonator based on an array of superconducting quantum interference devices (SQUIDs). Our investigation reveals vacuum-Rabi splittings with coupling strengths up to $g_0/2π= 260 ~\mathrm{MHz}$, and a cooperativity of $C \sim 100$, dependent on DQD tuning. Furthermore, utilizing the frequency tunability of our resonator, we explore the quenched energy splitting associated with strong Coulomb correlation effects in Ge QDs. The observed enhanced coherence of the strongly correlated excited state signals the presence of distinct symmetries within related spin functions, serving as a precursor to the strong coupling between photons and spin-charge hybrid qubits in planar Ge. This work paves the way towards coherent quantum connections between remote hole qubits in planar Ge, required to scale up hole-based quantum processors.
title Strong hole-photon coupling in planar Ge for probing charge degree and strongly-correlated states
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2310.20661