Title :
Extremely frequency-widened terahertz wave generation using Cherenkov-type radiation
Author :
Koketsu, Kaoru ; Suizu, Koji ; Shibuya, Takayuki ; Tsutsui, Toshihiro ; Kawase, Kodo
Author_Institution :
Nagoya Univ., Nagoya, Japan
Abstract :
Terahertz (THz) wave generation based on nonlinear frequency conversion is promising way for realizing a tunable monochromatic bright THz-wave source. Such a development of efficient and wide tunable THz-wave source depends on discovery of novel brilliant nonlinear crystal. Important factors of a nonlinear crystal for THz-wave generation are, 1. High nonlinearity and 2. Good transparency at THz frequency region. Unfortunately, many nonlinear crystals have strong absorption at THz frequency region. The fact limits efficient and wide tunable THz-wave generation. Here, we show that Cherenkov radiation with waveguide structure is an effective strategy for achieving efficient and extremely wide tunable THz-wave source. We fabricated MgO-doped lithium niobate slab waveguide with 3.8 mum of thickness and demonstrated difference frequency generation of THz-wave generation with Cherenkov phase matching. Extremely frequency-widened THz-wave generation, from 0.1 to 7.2 THz, without no structural dips successfully obtained. The tuning frequency range of waveguided Cherenkov radiation source was extremely widened compare to that of injection seeded-terahertz parametric generator. The tuning range obtained in this work for THz-wave generation using lithium niobate crystal was the widest value in our knowledge. The method can be easily applied for many conventional nonlinear crystals, results in realizing simple, reasonable, compact, high efficient and ultra broad band THz-wave sources.
Keywords :
Cherenkov radiation; lithium compounds; magnesium compounds; optical fabrication; optical frequency conversion; optical materials; optical phase matching; optical tuning; optical waveguides; terahertz wave generation; Cherenkov-type radiation; LiNbO3:MgO; brilliant nonlinear crystal; difference frequency generation; frequency 0.1 THz to 7.2 THz; frequency-widened terahertz wave generation; lithium niobate slab waveguide; nonlinear crystals; nonlinear frequency conversion; optical transparency; phase matching; size 3.8 mum; ultra broad band THz-wave source; wide tunable monochromatic bright source; Biomedical optical imaging; Crystals; Frequency conversion; Lithium niobate; Nonlinear optics; Optical frequency conversion; Optical pumping; Optical refraction; Optical surface waves; Optical variables control;
Conference_Titel :
Infrared, Millimeter, and Terahertz Waves, 2009. IRMMW-THz 2009. 34th International Conference on
Conference_Location :
Busan
Print_ISBN :
978-1-4244-5416-7
Electronic_ISBN :
978-1-4244-5417-4
DOI :
10.1109/ICIMW.2009.5325723