Danylov A A, Light A R, Waldman J, Erickson N
Appl Opt. 2015 Dec 10;54(35):10494-7. doi: 10.1364/AO.54.010494.
Measurements of the frequency stability of a far-infrared molecular laser have been made by mixing the harmonic of an ultrastable microwave source with a portion of the laser output signal in a terahertz (THz) Schottky diode balanced mixer. A 3 GHz difference-frequency signal was used in a frequency discriminator circuit to lock the laser to the microwave source. Comparisons of the short- and long-term laser frequency stability under free-running and locked conditions show a significant improvement with locking. Short-term frequency jitter was reduced by an order of magnitude, from approximately 40 to 4 kHz, and long-term drift was reduced by more than three orders of magnitude, from approximately 250 kHz to 80 Hz. The results, enabled by the efficient Schottky diode balanced mixer downconverter, demonstrate that ultrastable microwave-based frequency stabilization of THz optically pumped lasers (OPLs) will now be possible at frequencies extending well above 4.0 THz.
通过将超稳定微波源的谐波与太赫兹(THz)肖特基二极管平衡混频器中一部分激光输出信号进行混频,对远红外分子激光器的频率稳定性进行了测量。一个3GHz的差频信号被用于鉴频器电路中,以将激光器锁定到微波源。对自由运行和锁定条件下激光器短期和长期频率稳定性的比较表明,锁定后有显著改善。短期频率抖动降低了一个数量级,从约40kHz降至4kHz,长期漂移降低了三个多数量级,从约250kHz降至80Hz。由高效肖特基二极管平衡混频器下变频器实现的这些结果表明,基于超稳定微波的太赫兹光泵浦激光器(OPL)频率稳定现在在远高于4.0THz的频率上成为可能。