Giant and Actively Tunable Second-Harmonic Generation in Bilayer Graphene.
basic_science · Level V
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- Record sourced from PubMed, PMID 42441411.
- Also identified by DOI 10.1021/acsnano.6c07601.
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Abstract
Graphene, a prototypical 2D material celebrated for exceptional electronic and optical properties, is constrained by its centrosymmetric lattice, which intrinsically suppresses second-order nonlinear responses such as second-harmonic generation (SHG). Leveraging the symmetry tunability of van der Waals materials, we address this limitation via electrostatic control of the Hamiltonian. By employing an ion-gel top gate to exert a strong out-of-plane displacement field, we effectively break the inversion symmetry of bilayer graphene and unlock its latent χ<sup>(2)</sup> nonlinearity. We demonstrate a giant, actively tunable SHG response with a nonlinear susceptibility χ<sup>(2)</sup> ∼ 300 pm/V in the communication band, exceeding that of monolayer MoS<sub>2</sub> by over an order of magnitude, whereas the signal remains undetectable under conventional SiO<sub>2</sub> back-gating. Polarization-resolved measurements confirm a symmetry reduction to the <i>C</i><sub>3<i>v</i></sub> point group, while thickness-dependent studies establish a generalized framework for nonlinear optics in centrosymmetric stacks. Our work positions electrostatic symmetry control as a general approach for activating and controlling nonlinear responses in 2D materials, with potential applications in actively tunable integrated photonics and quantum light sources.