论文标题
超快宽带二分色的瞬态光学对称性破裂
Transient optical symmetry breaking for ultrafast broadband dichroism in plasmonic metasurfaces
论文作者
论文摘要
Ultrafast Nanophotonics是一个新兴的研究领域,旨在开发能够以前所未有的速度调节光调节的纳米媒介。有前途的方法利用了纳米结构材料(金属或介电性)的光学非线性,以通过与强烈的超短激光脉冲的相互作用来调节其有效介电常数。尽管深入研究了这些纳米结构的超快时间动力学,但在纳米级处发生的子PS瞬态空间不均匀性已被忽略了。在这里,我们从理论上预测并在实验上证明了光生热载体的不均匀时空分布会诱导由高度对称元素制成的等离激元超表面中的瞬时对称性破裂。该过程是完全可逆的,并导致宽带瞬态二科运动响应,以少于1 picsecond的初始各向同性状态恢复,从而克服了由较慢的松弛过程(例如电子 - phonon和Phonon-Phonon散射)引起的速度瓶颈。我们的结果铺平了超快二分性装置的发展,该设备能够调节光偏振。
Ultrafast nanophotonics is an emerging research field aimed at the development of nanodevices capable of light modulation with unprecedented speed. A promising approach exploits the optical nonlinearity of nanostructured materials (either metallic or dielectric) to modulate their effective permittivity via interaction with intense ultrashort laser pulses. While the ultrafast temporal dynamics of such nanostructures following photoexcitation has been studied in depth, sub-ps transient spatial inhomogeneities taking place at the nanoscale have been so far almost ignored. Here we theoretically predict and experimentally demonstrate that the inhomogeneous space-time distribution of photogenerated hot carriers induces a transient symmetry breaking in a plasmonic metasurface made of highly symmetric metaatoms. The process is fully reversible, and results in a broadband transient dichroic optical response with a recovery of the initial isotropic state in less than 1 picosecond, overcoming the speed bottleneck caused by slower relaxation processes, such as electron-phonon and phonon-phonon scattering. Our results pave the way to the development of ultrafast dichroic devices, capable of Tera bit/s modulation of light polarization.