English

Coexistence of local and nonlocal shock waves in nanomaterials

Optics 2022-11-14 v1

Abstract

High-performing nanomaterials are paramount for advanced photonic technologies, like sensing, lasing, imaging, data storage, processing, and medical and biological applications. Metal nanoparticles play a key role, because the localized surface plasmonic resonances enhance the linear and nonlinear optical properties of hosting materials, thus increasing the range of applications. The improved optical response results in an enriched and largely unexplored phenomenology. In the present work, we show the formation and interaction of two dispersive shock waves emerging by illuminating an aqueous suspension of gold nanorods with a pulsed laser beam. By analyzing the characteristic undular bores that regularize a shock front in a dispersive material, we were able to distinguish dispersive shock waves of different origins, i.e., electronic and thermal, first coexisting and then interacting to form a double front of equal intensity. The observed scenario agrees with existing literature reporting an electronic and thermal contribution to the nonlinear refractive index of material containing gold nanoparticles. Although a full comprehension of the reported results deserves an analytical description, they already pave the way to using materials containing metal nanoparticles as a platform for studying fundamental extreme nonlinear phenomena and developing novel solutions for sensing and control.

Keywords

Cite

@article{arxiv.2211.06341,
  title  = {Coexistence of local and nonlocal shock waves in nanomaterials},
  author = {Ilaria Gianani and Silvia Gentilini and Iole Venditti and Chiara Battocchio and Neda Ghofraniha and Marco Barbieri},
  journal= {arXiv preprint arXiv:2211.06341},
  year   = {2022}
}