Optics Express · 2008 · 293 citations · 17 references
PhotonicsEngineeringOptical PropertiesOptical ModulationPhotonic MaterialsApplied PhysicsDrive Voltage AmplitudeGuided-wave OpticPhotonic Integrated CircuitPhotonic DeviceOptoelectronicsModulator LengthElectro-optics DeviceBandwidth Limitations
The modulator uses photonic crystal slow‑light waveguides with a polymer‑filled slot that confines both optical and microwave fields, and prior work has shown broadband slow‑light transmission and efficient taper coupling in such structures. The authors propose a novel electro‑optic silicon‑based modulator achieving 78 GHz bandwidth, 1 V drive voltage, and only 80 µm length. The design employs polymer‑infiltrated silicon waveguides with low‑velocity, dispersion‑free slow‑light modes, a slotted Mach‑Zehnder interferometer, and an adiabatic taper to enhance coupling, thereby eliminating RC bandwidth constraints. The device enables 100 Gb/s transmission, demonstrating that combining these physical effects yields record performance.
A novel electro-optic silicon-based modulator with a bandwidth of 78GHz, a drive voltage amplitude of 1V and a length of only 80 microm is proposed. Such record data allow 100Gbit/s transmission and can be achieved by exploiting a combination of several physical effects. First, we rely on the fast and strong nonlinearities of polymers infiltrated into silicon, rather than on the slower free-carrier effect in silicon. Second, we use a Mach-Zehnder interferometer with slotted slow-light waveguides for minimizing the modulator length, but nonetheless providing a long interaction time for modulation field and optical mode. Third, with this short modulator length we avoid bandwidth limitations by RC time constants. The slow-light waveguides are based on a photonic crystal. A polymer-filled narrow slot in the waveguide center forms the interaction region, where both the optical mode and the microwave modulation field are strongly confined to. The waveguides are designed to have a low optical group velocity and negligible dispersion over a 1THz bandwidth. With an adiabatic taper we significantly enhance the coupling to the slow light mode. The feasibility of broadband slow-light transmission and efficient taper coupling has been previously demonstrated by us with calculations and microwave model experiments, where fabrication-induced disorder of the photonic crystal was taken into account.
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Micrometre-scale silicon electro-optic modulator
Qianfan Xu, Bradley S. Schmidt, Sameer Pradhan et al. · Nature · 2005 · 2.3K citations
Guiding and confining light in void nanostructure
Vilson R. Almeida, Qianfan Xu, Carlos Angulo Barrios et al. · Optics Letters · 2004 · 1.7K citations
Waveguides, Engineering, Nano-optics +16