We present a novel double-clad step-index few-mode fiber that operates as a five-sampled tunable true-time delay line. The unique feature of this design lies in its particular modal chromatic dispersion behavior, which varies in constant incremental steps among adjacent groups of modes. This property, which to the best of our knowledge has not been reported in any other few-mode fiber to date, is the key to tunable operation of radiofrequency signal processing functionalities implemented in few-mode fibers. The performance of the designed true-time delay line is theoretically evaluated for two different microwave photonics applications, namely tunable signal filtering and optical beamforming networks for phased array antennas. In the 35-nm ...
[EN] We experimentally demonstrate a novel technique to process broadband microwave signals, using a...
We present an overview of different mode-division multiplexing fiber technologies engineered to prov...
As a new transmission medium, few-mode fibers can increase the degree of freedom and suppress nonlin...
[EN] We present a novel double-clad step-index few-mode fiber that operates as a five-sampled tunabl...
We present a simple few-mode fiber design as a promising platform to implement tunable sampled true-...
We propose, for the first time to our knowledge, tunable true time delay line operation for radiofre...
Space-division multiplexing optical fibers can provide not only parallel channel transmission but al...
We propose and experimentally demonstrate distributed microwave photonics signal processing over a f...
The fibre-optic microwave photonic link has become one of the basic building blocks for microwave ph...
We report, for the first time to our knowledge, distributed radiofrequency signal processing built u...
Most existing microwave photonic transversal filters are implemented in the incoherent regime using ...
Copyright © Cambridge University Press and the European Microwave Association 2015. We present a tap...
A novel design of a tunable True-Time delay line (TTDL) based on a multicore Photonic Crystal Fiber ...
We review the introduction of the space dimension into fiber-based technologies to implement compact...
A microwave-photonic technique for measuring dispersion characteristics of few-mode fibers is propos...
[EN] We experimentally demonstrate a novel technique to process broadband microwave signals, using a...
We present an overview of different mode-division multiplexing fiber technologies engineered to prov...
As a new transmission medium, few-mode fibers can increase the degree of freedom and suppress nonlin...
[EN] We present a novel double-clad step-index few-mode fiber that operates as a five-sampled tunabl...
We present a simple few-mode fiber design as a promising platform to implement tunable sampled true-...
We propose, for the first time to our knowledge, tunable true time delay line operation for radiofre...
Space-division multiplexing optical fibers can provide not only parallel channel transmission but al...
We propose and experimentally demonstrate distributed microwave photonics signal processing over a f...
The fibre-optic microwave photonic link has become one of the basic building blocks for microwave ph...
We report, for the first time to our knowledge, distributed radiofrequency signal processing built u...
Most existing microwave photonic transversal filters are implemented in the incoherent regime using ...
Copyright © Cambridge University Press and the European Microwave Association 2015. We present a tap...
A novel design of a tunable True-Time delay line (TTDL) based on a multicore Photonic Crystal Fiber ...
We review the introduction of the space dimension into fiber-based technologies to implement compact...
A microwave-photonic technique for measuring dispersion characteristics of few-mode fibers is propos...
[EN] We experimentally demonstrate a novel technique to process broadband microwave signals, using a...
We present an overview of different mode-division multiplexing fiber technologies engineered to prov...
As a new transmission medium, few-mode fibers can increase the degree of freedom and suppress nonlin...