
AbstractOptical modulators can have high modulation speed and broad bandwidth, while being compact. However, these optical modulators usually work for low-intensity light beams. Here we present an ultrafast, plasma-based optical modulator, which can directly modulate high-power lasers with intensity up to 1016 W cm−2 to produce an extremely broad spectrum with a fractional bandwidth over 100%, extending to the mid-infrared regime in the low-frequency side. This concept relies on two co-propagating laser pulses in a sub-millimetre-scale underdense plasma, where a drive laser pulse first excites an electron plasma wave in its wake while a following carrier laser pulse is modulated by the plasma wave. The laser and plasma parameters suitable for the modulator to work are based on numerical simulations.
Physics, Science, Q, FOS: Physical sciences, 530, Physics - Plasma Physics, Article, Plasma Physics (physics.plasm-ph), QC, Physics - Optics, Optics (physics.optics)
Physics, Science, Q, FOS: Physical sciences, 530, Physics - Plasma Physics, Article, Plasma Physics (physics.plasm-ph), QC, Physics - Optics, Optics (physics.optics)
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