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BiBTeX citation export for WE3AO07: Measurement of Magnetic Field Using System-On-Chip Sensors

@inproceedings{sukhanov:icalepcs2023-we3ao07,
  author       = {A. Sukhanov},
  title        = {{Measurement of Magnetic Field Using System-On-Chip Sensors}},
% booktitle    = {Proc. ICALEPCS'23},
  booktitle    = {Proc. 19th Int. Conf. Accel. Large Exp. Phys. Control Syst. (ICALEPCS'23)},
  eventdate    = {2023-10-09/2023-10-13},
  pages        = {1083--1086},
  paper        = {WE3AO07},
  language     = {english},
  keywords     = {controls, radiation, interface, electron, monitoring},
  venue        = {Cape Town, South Africa},
  series       = {International Conference on Accelerator and Large Experimental Physics Control Systems},
  number       = {19},
  publisher    = {JACoW Publishing, Geneva, Switzerland},
  month        = {02},
  year         = {2024},
  issn         = {2226-0358},
  isbn         = {978-3-95450-238-7},
  doi          = {10.18429/JACoW-ICALEPCS2023-WE3AO07},
  url          = {https://jacow.org/icalepcs2023/papers/we3ao07.pdf},
  abstract     = {{Magnetic sensors have been developed utilizing various physical phenomena such as Electromagnetic Induction, Hall Effect, Tunnel Magnetoresistance(TMR), Giant Magnetoresistance (GMR), Anisotropic Magnetoresistance (AMR) and Giant Magnetoimpedance (GMI). The compatibility of solid-state magnetic sensors with complementary metal-oxide-semiconductor (CMOS) fabrication processes makes it feasible to achieve integration of sensor with sensing and computing circuitry at the same time, resulting in systems on chip. In this paper we describe application of AMR, TMR and Hall effect integrated sensors for precise measurement of 3D static magnetic field in wide range of magnitudes from 10⁻⁶ T to 0.3 T, as well as pulsed magnetic field up to 0.3 T. }},
}