Helmholtz-Zentrum Dresden-Rossendorf , P.O. Box 510119, 01314 Dresden, Germany.
Technische Universität Dresden , 01062 Dresden, Germany.
Nano Lett. 2017 Apr 12;17(4):2184-2188. doi: 10.1021/acs.nanolett.6b04665. Epub 2017 Feb 28.
For Landau-quantized graphene, featuring an energy spectrum consisting of nonequidistant Landau levels, theory predicts a giant resonantly enhanced optical nonlinearity. We verify the nonlinearity in a time-integrated degenerate four-wave mixing (FWM) experiment in the mid-infrared spectral range, involving the Landau levels LL, LL and LL. A rapid dephasing of the optically induced microscopic polarization on a time scale shorter than the pulse duration (∼4 ps) is observed, while a complementary pump-probe experiment under the same experimental conditions reveals a much longer lifetime of the induced population. The FWM signal shows the expected field dependence with respect to lowest order perturbation theory for low fields. Saturation sets in for fields above ∼6 kV/cm. Furthermore, the resonant behavior and the order of magnitude of the third-order susceptibility are in agreement with our theoretical calculations.
对于朗道量子化的石墨烯,其能谱由非等距的朗道能级组成,理论预测其具有巨大的共振增强光学非线性。我们在中红外光谱范围内的时间积分简并四波混频(FWM)实验中验证了这种非线性,该实验涉及朗道能级 LL、LL 和 LL。我们观察到光诱导微观极化在比脉冲持续时间(约 4 ps)更短的时间尺度上快速退相,而在相同实验条件下的互补泵浦探测实验则揭示了诱导粒子数的更长寿命。FWM 信号表现出与低场下低阶微扰理论预期的场依赖性。在约 6 kV/cm 以上的场中,出现了饱和现象。此外,共振行为和三阶介电常数的量级与我们的理论计算一致。