Scanning SQUID susceptometry of a paramagnetic superconductor
Abstract
Scanning SQUID susceptometry images the local magnetization and susceptibility of a sample. By accurately modeling the SQUID signal we can determine physical properties such as the penetration depth and permeability of superconducting samples. We calculate the scanning SQUID susceptometry signal for a superconducting slab of arbitrary thickness with isotropic London penetration depth λ on a nonsuperconducting substrate, where both slab and substrate can have a paramagnetic response that is linear in the applied field. We derive analytical approximations to our general expression in a number of limits. Using our results, we fit experimental susceptibility data as a function of the sample-sensor spacing for three samples: (1) δ-doped SrTiO3, which has a predominantly diamagnetic response, (2) a thin film of LaNiO3, which has a predominantly paramagnetic response, and (3) the two-dimensional electron layer at a SrTiO3/LaAlO3 interface, which exhibits both types of response. These formulas will allow the determination of the concentrations of paramagnetic spins and superconducting carriers from fits to scanning SQUID susceptibility measurements.
- Publication:
-
Physical Review B
- Pub Date:
- June 2012
- DOI:
- 10.1103/PhysRevB.85.224518
- arXiv:
- arXiv:1204.3355
- Bibcode:
- 2012PhRvB..85v4518K
- Keywords:
-
- 74.72.Cj;
- 85.25.Dq;
- 74.25.Ha;
- Superconducting quantum interference devices;
- Magnetic properties;
- Condensed Matter - Superconductivity
- E-Print:
- 11 pages, 13 figures