Experimental realization of magnetic energy concentration and transmission at a distance by metamaterials
arXiv:1308.5878 · doi:10.1063/1.4903867
Abstract
Controlling electromagnetic energy is essential for an efficient and sustainable society. A key requirement is concentrating magnetic energy in a desired volume of space in order to either extract the energy to produce work or store it. Metamaterials have opened new possibilities for controlling electromagnetic energy. Recently, a superconductor-ferromagnetic metamaterial that allows unprecedented concentration and amplification of magnetic energy, and also its transmission at distance through free space, has been devised theoretically. Here we design and build an actual version of the superconductor-ferromagnetic metamaterial and experimentally confirm these properties. We show that also a ferromagnetic metamaterial, without superconducting parts, can achieve concentration and transmission of energy with only a slight decrease in the performance. Transmission of magnetic energy at a distance by magnetic metamaterials may provide new ways of enhancing wireless power transmission, where efficiency depends critically on the magnetic coupling strength between source and receiver.
5 pages, 4 figures
References in corpus (9)
- The Physics and Applications of Superconducting Metamaterials
- Metamaterial-Enhanced Coupling between Magnetic Dipoles for Efficient Wireless Power Transfer
- Progress in Superconducting Metamaterials
- A DC magnetic metamaterial
- Antimagnets: Controlling magnetic fields with superconductor-metamaterial hybrids
- Magnetic energy harvesting and concentration at distance by transformation optics
- Magnetic superlens-enhanced inductive coupling for wireless power transfer
- Experimental realization of magnetic energy concentration and transmission at a distance by metamaterials
- Metamaterial anisotropic flux concentrators and magnetic arrays
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