Josephson junctions and SQUIDs created by focused helium ion beam irradiation of YBaCuO
arXiv:1901.08039 · doi:10.1103/PhysRevApplied.11.044082
Abstract
By scanning with a focused He ion beam (He-FIB) across YBaCuO (YBCO) thin film microbridges, we create Josephson barriers with critical current density adjustable by irradiation dose . The dependence yields an exponential decay. At , a transition from flux-flow to Josephson behavior occurs when decreases below . The Josephson junctions exhibit current-voltage characteristics (IVCs) that are well described by the resistively and capacitively shunted junction model, without excess current for characteristic voltages . Devices on MgO and LSAT substrates show non-hysteretic IVCs, while devices on SrTiO show a small hysteresis. For all junctions an approximate scaling is found. He-FIB irradiation with high dose produces barriers with and high resistances of . This provides the possibility to write highly resistive walls or areas into YBCO using a He-FIB. Transmission electron microscopy reveals an amorphous phase within the walls, whereas for lower doses the YBCO stays crystalline. We have also ``drawn'' superconducting quantum interference devices (SQUIDs) by using a He-FIB for definition of the SQUID hole and the junctions. The SQUIDs show high performance, with flux noise in the thermal white noise limit for a device with inductance.
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