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Electrically tuneable nonequilibrium optical response of graphene

Materials Science 2022-02-24 v2 Mesoscale and Nanoscale Physics

Abstract

The ability to tune the optical response of a material via electrostatic gating is crucial for optoelectronic applications, such as electro-optic modulators, saturable absorbers, optical limiters, photodetectors and transparent electrodes. The band structure of single layer graphene (SLG), with zero-gap, linearly dispersive conduction and valence bands, enables an easy control of the Fermi energy EF_F and of the threshold for interband optical absorption. Here, we report the tunability of the SLG non-equilibrium optical response in the near-infrared (1000-1700nm/0.729-1.240eV), exploring a range of EF_F from -650 to 250 meV by ionic liquid gating. As EF_F increases from the Dirac point to the threshold for Pauli blocking of interband absorption, we observe a slow-down of the photobleaching relaxation dynamics, which we attribute to the quenching of optical phonon emission from photoexcited charge carriers. For EF_F exceeding the Pauli blocking threshold, photobleaching eventually turns into photoinduced absorption, due to hot electrons' excitation increasing SLG absorption. The ability to control both recovery time and sign of nonequilibrium optical response by electrostatic gating makes SLG ideal for tunable saturable absorbers with controlled dynamics.

Keywords

Cite

@article{arxiv.2106.07942,
  title  = {Electrically tuneable nonequilibrium optical response of graphene},
  author = {Eva A. A. Pogna and Andrea Tomadin and Osman Balci and Giancarlo Soavi and Ioannis Paradisanos and Michele Guizzardi and Paolo Pedrinazzi and Sandro Mignuzzi and Klaas-Jan Tielrooij and Marco Polini and Andrea C. Ferrari and Giulio Cerullo},
  journal= {arXiv preprint arXiv:2106.07942},
  year   = {2022}
}

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