An easy-plane FeSi composite with excellent magnetic properties and loss properties at MHz were proposed. The easy-plane FeSi composite has ultra-low loss at 10 MHz and 4 mT, about 372.88 kW/m. In order to explore the reason that the Pcv of easy-plane FeSi composite is ultra-low, a none easy-plane FeSi composite, without easy-plane processing as a control group, measured the microstructure, and the magnetic and loss properties. We first found that the real reason why magnetic materials do not work properly at MHz due to overheat is dramatical increase of the excess loss and the easy-plane composite can greatly re-duce the excess loss by loss measurement and separation. The total loss of none easy-plane FeSi composite is much higher than that of easy-plane FeSi composite, where the excess loss is a major part in the total loss and even over 80% in the none easy-plane FeSi composite. The easy-plane FeSi composite can greatly reduce the total loss compared to the none easy-plane FeSi composite, from 2785.8 kW/m to 500.42 kW/m (3 MHz, 8 mT), with the main reduction being the excess loss, from 2435.2 kW/m to 204.93 kW/m (3 MHz, 8 mT), reduced by 91.58%. Furthermore, the easy-plane FeSi composite also has excellent magnetic properties, high permeability and ferromagnetic resonance frequencies. This makes the easy-plane FeSi composite become an excellent soft magnetic composite and it is possible for magnetic devices to operate properly at higher frequencies, especially at the MHz band and above.
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http://dx.doi.org/10.3390/ma16145133 | DOI Listing |
Materials (Basel)
July 2023
Key Laboratory for Magnetism and Magnetic Materials of Ministry of Education, Institute of Applied Magnetism, Lanzhou University, Lanzhou 730030, China.
An easy-plane FeSi composite with excellent magnetic properties and loss properties at MHz were proposed. The easy-plane FeSi composite has ultra-low loss at 10 MHz and 4 mT, about 372.88 kW/m.
View Article and Find Full Text PDFNat Commun
September 2021
Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, TN, USA.
An ongoing challenge in the study of quantum materials, is to reveal and explain collective quantum effects in spin systems where interactions between different modes types are important. Here we approach this problem through a combined experimental and theoretical study of interacting transverse and longitudinal modes in an easy-plane quantum magnet near a continuous quantum phase transition. Our inelastic neutron scattering measurements of BaFeSiO reveal the emergence, decay, and renormalization of a longitudinal mode throughout the Brillouin zone.
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