A multi-stable switchable metamaterial
arXiv:1312.2937 · doi:10.1038/ncomms4730
Abstract
The field of metamaterial research revolves around the idea of creating artificial media that interact with light in a way unknown from naturally occurring materials. This is commonly achieved by creating sub-wavelength lattices of electronic or plasmonic structures, so-called meta-atoms, that determine the interaction between light and metamaterial. One of the ultimate goals for these tailored media is the ability to control their properties in-situ which has led to a whole new branch of tunable and switchable metamaterials. Many of the present realizations rely on introducing microelectromechanical actuators or semiconductor elements into their meta-atom structures. Here we show that superconducting quantum interference devices (SQUIDs) can be used as fast, intrinsically switchable meta-atoms. We found that their intrinsic nonlinearity leads to simultaneously stable dynamic states, each of which is associated with a different value and sign of the magnetic susceptibility in the microwave domain. Moreover, we demonstrate that it is possible to switch between these states by applying a nanosecond long pulse in addition to the microwave probe signal. Apart from potential applications such as, for example, an all-optical metamaterial switch, these results suggest that multi-stability, which is a common feature in many nonlinear systems, can be utilized to create new types of meta-atoms.
References in corpus (8)
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Photon-mediated interactions between distant artificial atoms
- The Physics and Applications of Superconducting Metamaterials
- Two-resonator circuit QED: A superconducting quantum switch
- Implementation of a Quantum Metamaterial
- Response of the Strongly-Driven Jaynes-Cummings Oscillator
- Observing the Nonequilibrium Dynamics of the Quantum Transverse-Field Ising Chain in Circuit QED
- Realization and modeling of rf superconducting quantum interference device metamaterials
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