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This thesis presents pioneering work in the relatively new field of
focused ion beam (FIB) sculpting of single crystals to produce
bespoke devices and enable the investigation of physics that cannot
be studied in bulk samples. It begins with a comprehensive and
didactic account of how to achieve this sculpting, revealing the
'tricks of the trade' of state-of-the-art FIB microstructuring. In
subsequent chapters, the author presents ground-breaking results
obtained from microstructures of the delafossite oxide metal PdCoO2
and the heavy fermion superconductor CeIrIn5. In these elegant,
forefront experiments, a new form of directional ballistic
transport in the ultra-pure delafossites is described and
explained. Furthermore, a new way to spatially modulate
superconductivity induced by strain is demonstrated with electrical
transport measurements that agree well with predictions based on
thermoelastic finite element simulations.
This thesis presents pioneering work in the relatively new field of
focused ion beam (FIB) sculpting of single crystals to produce
bespoke devices and enable the investigation of physics that cannot
be studied in bulk samples. It begins with a comprehensive and
didactic account of how to achieve this sculpting, revealing the
'tricks of the trade' of state-of-the-art FIB microstructuring. In
subsequent chapters, the author presents ground-breaking results
obtained from microstructures of the delafossite oxide metal PdCoO2
and the heavy fermion superconductor CeIrIn5. In these elegant,
forefront experiments, a new form of directional ballistic
transport in the ultra-pure delafossites is described and
explained. Furthermore, a new way to spatially modulate
superconductivity induced by strain is demonstrated with electrical
transport measurements that agree well with predictions based on
thermoelastic finite element simulations.
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Nadine Gordimer
Paperback
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R205
R168
Discovery Miles 1 680
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