We created SQUID (superconducting quantum interference device) with a record operating temperature of 179 K.
Sensitivity of superhydride SQUIDs can be improved to 0.01 G, and the operating temperature can reach 240 K.
More advanced applications of hydride SQUIDs can be envisioned by taking advantage of microfabrication tools.
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Properties of the (La, Ce)H10+x sample in the DAC H and the scheme of measurements.
The AC transport study of the (La, Ce)H10+x sample in DAC H at 148 GPa in a modulated low-frequency magnetic field. A four-electrode van der Pauw41 circuit was used
X-ray diffraction studies of polyhydrides in special DACs with a wide opening angle, synthesized via laser heating of metals and alloys with ammonia borane
The DC SQUID effect and generation of higher harmonics in the (La, Ce)H10+x sample at the pressure of 148 GPa and the temperature of 179 ± 0.5 K. The external magnetic field was generated by a sinusoidal current passing through a solenoid with a frequency of