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   	<dc:title>Singlet-triplet qubits in planar Germanium : From exchange anisotropies to autonomous tuning </dc:title>
   	<dc:title>ISTA Thesis</dc:title>
   	<dc:creator>Saez Mollejo, Jaime</dc:creator>
   	<dc:subject>ddc:530</dc:subject>
   	<dc:subject>ddc:539</dc:subject>
   	<dc:description>Over the past century, researchers have been fascinated by the quantum nature of the
physical world, initially striving to understand its fundamental principles and consequences, and
eventually progressing toward engineering systems that can control and manipulate quantum
properties. Today, we stand at the dawn of the quantum technology era. While some quantum
technologies follow well-defined roadmaps, others are still in the exciting and uncertain early
stages of development. In the fields of quantum computing and quantum simulation, research
is being conducted across a wide variety of platforms. Each of these demonstrates control over
quantum properties but also faces challenges in scaling up to the level of a mature technology.
This thesis explores some of the fundamental properties of hole spin qubits in planar germanium.
Semiconductor spin qubits are considered strong candidates for the realization of quantum
processors, owing to their long relaxation and coherence times, as well as their compatibility
with existing semiconductor industry infrastructure. Among these, hole spin qubits in planar
germanium are particularly promising. Their advantages include a large effective mass, which
eases fabrication constraints; inherent protection from hyperfine noise; and strong spin-orbit
interaction, which enables fast and purely electrical control. However, spin-orbit coupling also
introduces site-dependent variability across qubits, particularly in the g-tensors and spin-flip
tunneling, which might cause that the quantization axes are not aligned. In this thesis, we
investigate the tilt between the quantization axes of two hole spins hosted in a double quantum
dot as a function of both the magnetic field direction and various electrostatic configurations,
demonstrating that both parameters influence this tilt. We conclude by introducing a machine-learning-assisted routine to automatically tune baseband spin qubits. This approach may prove
to be a powerful tool for characterizing spin-orbit effects and gaining deeper insight into the
physics governing spin qubit behavior.
</dc:description>
   	<dc:publisher>Institute of Science and Technology Austria</dc:publisher>
   	<dc:date>2025</dc:date>
   	<dc:type>info:eu-repo/semantics/doctoralThesis</dc:type>
   	<dc:type>doc-type:doctoralThesis</dc:type>
   	<dc:type>text</dc:type>
   	<dc:type>http://purl.org/coar/resource_type/c_db06</dc:type>
   	<dc:identifier>https://research-explorer.ista.ac.at/record/19836</dc:identifier>
   	<dc:identifier>https://research-explorer.ista.ac.at/download/19836/19851</dc:identifier>
   	<dc:source>Saez Mollejo J. Singlet-triplet qubits in planar Germanium : From exchange anisotropies to autonomous tuning . 2025. doi:&lt;a href=&quot;https://doi.org/10.15479/AT-ISTA-19836&quot;&gt;10.15479/AT-ISTA-19836&lt;/a&gt;</dc:source>
   	<dc:language>eng</dc:language>
   	<dc:relation>info:eu-repo/semantics/altIdentifier/doi/10.15479/AT-ISTA-19836</dc:relation>
   	<dc:relation>info:eu-repo/semantics/altIdentifier/issn/2663-337X</dc:relation>
   	<dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
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