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Non-reciprocal Pauli Spin Blockade in a Silicon Double Quantum Dot

Authors :
Lundberg, Theodor
Ibberson, David J.
Li, Jing
Hutin, Louis
Abadillo-Uriel, José C.
Filippone, Michele
Bertrand, Benoit
Nunnenkamp, Andreas
Lee, Chang-Min
Stelmashenko, Nadia
Robinson, Jason W.A.
Vinet, Maud
Ibberson, Lisa
Niquet, Yann-Michel
Gonzalez-Zalba, M. Fernando
Institut de Recherche Interdisciplinaire de Grenoble (IRIG)
Direction de Recherche Fondamentale (CEA) (DRF (CEA))
Commissariat à l'énergie atomique et aux énergies alternatives (CEA)-Commissariat à l'énergie atomique et aux énergies alternatives (CEA)
Commissariat à l'énergie atomique et aux énergies alternatives - Laboratoire d'Electronique et de Technologie de l'Information (CEA-LETI)
Direction de Recherche Technologique (CEA) (DRT (CEA))
Publication Year :
2021

Abstract

Spin qubits in gate-defined silicon quantum dots are receiving increased attention thanks to their potential for large-scale quantum computing. Readout of such spin qubits is done most accurately and scalably via Pauli spin blockade (PSB), however various mechanisms may lift PSB and complicate readout. In this work, we present an experimental observation of a new, highly prevalent PSB-lifting mechanism in a silicon double quantum dot due to incoherent tunneling between different spin manifolds. Through dispersively-detected magnetospectroscopy of the double quantum dot in 16 charge configurations, we find the mechanism to be energy-level selective and non-reciprocal for neighbouring charge configurations. Additionally, using input-output theory we report a large coupling of different electron spin manifolds of 7.90 $\mu$eV, the largest reported to date, indicating an enhanced spin-orbit coupling which may enable all-electrical qubit control.<br />Comment: 12 pages, 10 figures. Minor updates to notation

Details

Language :
English
Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....3621d7634be173f68900f0d91bab0d2a