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Main Authors: Karapatzakis, Ioannis, Resch, Jeremias, Schrodin, Marcel, Fuchs, Philipp, Kieschnick, Michael, Heupel, Julia, Kussi, Luis, Sürgers, Christoph, Popov, Cyril, Meijer, Jan, Becher, Christoph, Wernsdorfer, Wolfgang, Hunger, David
Formato: Preprint
Publicado: 2024
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Acceso en liña:https://arxiv.org/abs/2403.00521
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author Karapatzakis, Ioannis
Resch, Jeremias
Schrodin, Marcel
Fuchs, Philipp
Kieschnick, Michael
Heupel, Julia
Kussi, Luis
Sürgers, Christoph
Popov, Cyril
Meijer, Jan
Becher, Christoph
Wernsdorfer, Wolfgang
Hunger, David
author_facet Karapatzakis, Ioannis
Resch, Jeremias
Schrodin, Marcel
Fuchs, Philipp
Kieschnick, Michael
Heupel, Julia
Kussi, Luis
Sürgers, Christoph
Popov, Cyril
Meijer, Jan
Becher, Christoph
Wernsdorfer, Wolfgang
Hunger, David
contents Group-IV color centers in diamond are promising candidates for quantum networks due to their dominant zero-phonon line and symmetry-protected optical transitions that connect to coherent spin levels. The negatively charged tin-vacancy (SnV) center possesses long electron spin lifetimes due to its large spin-orbit splitting. However, the magnetic dipole transitions required for microwave spin control are suppressed, and strain is necessary to enable these transitions. Recent work has shown spin control of strained emitters using microwave lines that suffer from Ohmic losses, restricting coherence through heating. We utilize a superconducting coplanar waveguide to measure SnV centers subjected to strain, observing substantial improvement. A detailed analysis of the SnV center electron spin Hamiltonian based on the angle-dependent splitting of the ground and excited states is performed. We demonstrate coherent spin manipulation and obtain a Hahn echo coherence time of up to $T_2 = 430\,μ$s. With dynamical decoupling, we can prolong coherence to $T_2 = 10\,$ms, about six-fold improved compared to earlier works. We also observe a nearby coupling $^{13}\mathrm{C}$ spin which may serve as a quantum memory. This substantiates the potential of SnV centers in diamond and demonstrates the benefit of superconducting microwave structures.
format Preprint
id arxiv_https___arxiv_org_abs_2403_00521
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Microwave Control of the Tin-Vacancy Spin Qubit in Diamond with a Superconducting Waveguide
Karapatzakis, Ioannis
Resch, Jeremias
Schrodin, Marcel
Fuchs, Philipp
Kieschnick, Michael
Heupel, Julia
Kussi, Luis
Sürgers, Christoph
Popov, Cyril
Meijer, Jan
Becher, Christoph
Wernsdorfer, Wolfgang
Hunger, David
Quantum Physics
Group-IV color centers in diamond are promising candidates for quantum networks due to their dominant zero-phonon line and symmetry-protected optical transitions that connect to coherent spin levels. The negatively charged tin-vacancy (SnV) center possesses long electron spin lifetimes due to its large spin-orbit splitting. However, the magnetic dipole transitions required for microwave spin control are suppressed, and strain is necessary to enable these transitions. Recent work has shown spin control of strained emitters using microwave lines that suffer from Ohmic losses, restricting coherence through heating. We utilize a superconducting coplanar waveguide to measure SnV centers subjected to strain, observing substantial improvement. A detailed analysis of the SnV center electron spin Hamiltonian based on the angle-dependent splitting of the ground and excited states is performed. We demonstrate coherent spin manipulation and obtain a Hahn echo coherence time of up to $T_2 = 430\,μ$s. With dynamical decoupling, we can prolong coherence to $T_2 = 10\,$ms, about six-fold improved compared to earlier works. We also observe a nearby coupling $^{13}\mathrm{C}$ spin which may serve as a quantum memory. This substantiates the potential of SnV centers in diamond and demonstrates the benefit of superconducting microwave structures.
title Microwave Control of the Tin-Vacancy Spin Qubit in Diamond with a Superconducting Waveguide
topic Quantum Physics
url https://arxiv.org/abs/2403.00521