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A high-TcSQUID gradiometer with integrated homogeneous field compensation

Volkmar Schultze, Dietmar Drung, Rob IJsselsteijn and Hans-Georg Meyer
Superconductor Science and Technology 17 (5) S165 (2004)
https://doi.org/10.1088/0953-2048/17/5/015

Highly balanced single-layer high-temperature superconductor SQUID gradiometer freely movable within the Earth s magnetic field

Volkmar Schultze, Rob IJsselsteijn, Torsten May and Hans-Georg Meyer
Superconductor Science and Technology 16 (7) 773 (2003)
https://doi.org/10.1088/0953-2048/16/7/306

Construction and measurements of HTS DC SQUID electronic gradiometer to be used in NDE systems

Jinyoung Kim, Joonhee Kang, Eunhong Lee, et al.
IEEE Transactions on Appiled Superconductivity 9 (2) 4389 (1999)
https://doi.org/10.1109/77.783997

Low-noise integrated SQUID electronics operating in liquid nitrogen

V. Zakosarenko, J. Kunert, V. Schultze, et al.
IEEE Transactions on Appiled Superconductivity 9 (2) 3283 (1999)
https://doi.org/10.1109/77.783730

High-temperature superconducting YBCO dc SQUID gradiometers fabricated on STO bicrystal substrates

C Carr, A Eulenburg, E J Romans, C M Pegrum and G B Donaldson
Superconductor Science and Technology 11 (11) 1317 (1998)
https://doi.org/10.1088/0953-2048/11/11/020

Integrated SQUID gradiometers for measurement in disturbed environments

V. Schultze, R. Stolz, R. Ijsselsteijn, et al.
IEEE Transactions on Appiled Superconductivity 7 (2) 3473 (1997)
https://doi.org/10.1109/77.622141

High Tc SQUIDs with two or three junctions for application in disturbed environment

V. Schultze, R. Ijsselsteijn, V. Zakosarenko, et al.
Applied Superconductivity 5 (7-12) 221 (1997)
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