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Updated: Aug 5, 2026

Design, Fabrication, and Experimental Characterization of Plasmonic Photoconductive Terahertz Emitters
Published on: July 8, 2013
Bidirectional terahertz frequency conversion via structural resonances at a plasma time boundary
Yindong Huang1, Bin Zhou1,2, Aijun Xuan1,3
1Innovation Laboratory of Terahertz Biophysics, National Innovation Institute of Defense Technology, Beijing 100071, China.
Researchers created an ultrafast time boundary using laser-induced plasma, achieving bidirectional frequency conversion for terahertz waves. This breakthrough enables new possibilities in dynamic terahertz photonics and light-matter interactions.
Area of Science:
- Physics
- Optics
- Materials Science
Background:
- Time boundaries offer dynamic spectral control by altering material refractive index.
- Previous studies in Drude-like materials resulted in limited, unidirectional frequency shifts.
Purpose of the Study:
- To experimentally realize an ultrafast time boundary for terahertz waves using a laser-induced plasma.
- To investigate bidirectional frequency conversion and its underlying mechanisms.
Main Methods:
- Created a time boundary by converting air into a cylindrical plasma column within 100 femtoseconds.
- Utilized terahertz waves interacting with a plasma exhibiting a Lorentzian resonant response.
- Employed a model coupling tunneling ionization with Lorentzian dispersion to analyze results.
Main Results:
- Observed unconventional bidirectional frequency conversion (simultaneous red- and blue-shifted) at a single time boundary.
- Confirmed time refraction as a fundamental sub-cycle effect by resolving spectral evolution.
- Demonstrated strong, sub-cycle refractive index modulation.
Conclusions:
- Lorentzian time boundaries provide a platform for advanced temporal light-matter interactions.
- This research lays the foundation for dynamic terahertz photonics, including reconfigurable spectral elements and photonic time crystals.
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