Bidirectional terahertz frequency conversion via structural resonances at a plasma time boundary
Yindong Huang, Bin Zhou, Aijun Xuan, Mingxin Gao, Jing Lou, Xiaomin Qu, Zengxiu Zhao, Ce Shang, Xuchen Wang, Chao Chang, Viktar AsadchyA time boundary, an abrupt temporal change in material refractive index that conserves wave vector while shifting optical frequency, offers a powerful route to dynamic spectral control. Prior demonstrations of time boundaries in Drude-like materials have predominantly produced simple, unidirectional frequency shifts. Here, we experimentally realize an ultrafast time boundary for terahertz waves at an interface between air and a laser-induced plasma that exhibits a Lorentzian resonant response via a localized surface-plasmon mode. The boundary is created by converting air into a cylindrical plasma column within 100 femtoseconds, enabling strong, sub-cycle index modulation. We observe time refraction with unconventional bidirectional (simultaneous red- and blue-shifted) frequency conversion at a single boundary. A simple model that couples a tunneling-ionization description of plasma formation with Lorentzian dispersion quantitatively reproduces the measured spectra. By precisely tuning the delay between plasma creation and terahertz-wave arrival, we resolve the spectral evolution in time and directly confirm time refraction as a fundamental sub-cycle effect. These results establish Lorentzian time boundaries as an experimental platform for rich temporal light-matter interactions and lay groundwork for dynamic terahertz photonics, including temporally reconfigurable spectral elements, amplification schemes, and building blocks for photonic time crystals and spatiotemporal metamaterials.