Title :
High-sensitivity giant magneto-inductive magnetometer characterization implemented with a low-frequency magnetic noise-reduction technique
Author :
Boukhenoufa, Abdelmalek ; Dolabdjian, Christophe P. ; Robbes, Didier
Author_Institution :
GREYC UMR ISMRA, Univ. of Caen, France
Abstract :
The Giant Magneto-Inductive (GMI) effect in amorphous magnetic and conducting wires is analyzed using the concepts and words of electronics engineering to show the way high-sensitivity GMI magnetometers may be designed. Starting from a simple modeling of the magneto-impedance, direct and field-locked loop magnetometers are discussed, together with the implementation of a low-frequency noise-reduction technique that makes good use of a basic modulating method. It allows the removal of a part of the 1/f noise in the magnetometer. The unmodulated magnetometer characteristics are the following: bandwidth higher than 100 kHz and white noise level lower than 7 pT/√Hz above 40 KHz. Similarly, the main auxiliary modulated magnetometer characteristics are as follows: bandwidth of 4.8 kHz and white noise level lower than 60 pT/√Hz above 3 Hz. The slew rate in both cases is limited by the electronics to 5 mT/s. The dynamic of these magnetometers is about ±25 μT, which corresponds to more than 120 dB in 1 Hz bandwidth above 1 Hz.
Keywords :
1/f noise; amorphous magnetic materials; giant magnetoresistance; magnetic noise; magnetic sensors; magnetometers; 4.8 kHz; amorphous magnetic wires; auxiliary modulated magnetometer; conducting wires; electronics engineering; field-locked loop magnetometers; giant magneto-inductive magnetometer; low-frequency magnetic noise-reduction technique; magneto-impedance; slew rate; unmodulated magnetometer; white noise; Amorphous magnetic materials; Amorphous materials; Bandwidth; Low-frequency noise; Magnetic analysis; Magnetic modulators; Magnetic noise; Magnetometers; White noise; Wires; GMI; low noise; magnetometer;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2004.841451