Few-cycle lightwave-driven currents in a semiconductor at high repetition rate
Abstract
When an intense, few-cycle light pulse impinges on a dielectric or semiconductor material, the electric field will interact nonlinearly with the solid, driving a coherent current. An asymmetry of the ultrashort, carrier-envelope-phase-stable waveform results in a net transfer of charge, which can be measured by macroscopic electric contact leads. This effect has been pioneered with extremely short, single-cycle laser pulses at low repetition rate, thus limiting the applicability of its potential for ultrafast electronics. We investigate lightwave-driven currents in gallium nitride using few-cycle laser pulses of nearly twice the duration and at a repetition rate two orders of magnitude higher than in previous work. We successfully simulate our experimental data with a theoretical model based on interfering multiphoton transitions, using the exact laser pulse shape retrieved from dispersion-scan measurements. Substantially increasing the repetition rate and relaxing the constraint on the pulse duration marks an important step forward towards applications of lightwave-driven electronics.
Cite
@article{arxiv.2001.09433,
title = {Few-cycle lightwave-driven currents in a semiconductor at high repetition rate},
author = {Fabian Langer and Yen-Po Liu and Zhe Ren and Vidar Flodgren and Chen Guo and Jan Vogelsang and Sara Mikaelsson and Ivan Sytcevich and Jan Ahrens and Anne L'Huillier and Cord L. Arnold and Anders Mikkelsen},
journal= {arXiv preprint arXiv:2001.09433},
year = {2020}
}
Comments
10 pages, 4 figures, 33 references, submitted to Optica