Daugey Thomas, Friedt Jean-Michel, Martin Gilles, Boudot Rodolphe
FEMTO-ST, CNRS, UFC, 26 chemin de l'Epitaphe 25030 Besançon Cedex, France.
Rev Sci Instrum. 2015 Nov;86(11):114703. doi: 10.1063/1.4935172.
This article reports on the design and characterization of a high-overtone bulk acoustic wave resonator (HBAR)-oscillator-based 4.596 GHz frequency source. A 2.298 GHz signal, generated by an oscillator constructed around a thermally controlled two-port aluminum nitride-sapphire HBAR resonator with a Q-factor of 24,000 at 68 °C, is frequency multiplied by 2-4.596 GHz, half of the Cs atom clock frequency. The temperature coefficient of frequency of the HBAR is measured to be -23 ppm/ °C at 2.298 GHz. The measured phase noise of the 4.596 GHz source is -105 dB rad(2)/Hz at 1 kHz offset and -150 dB rad(2)/Hz at 100 kHz offset. The 4.596 GHz output signal is used as a local oscillator in a laboratory-prototype Cs microcell-based coherent population trapping atomic clock. The signal is stabilized onto the atomic transition frequency by tuning finely a voltage-controlled phase shifter implemented in the 2.298 GHz HBAR-oscillator loop, preventing the need for a high-power-consuming direct digital synthesis. The short-term fractional frequency stability of the free-running oscillator is 1.8 × 10(-9) at one second integration time. In locked regime, the latter is improved in a preliminary proof-of-concept experiment at the level of 6.6 × 10(-11) τ(-1/2) up to a few seconds and found to be limited by the signal-to-noise ratio of the detected CPT resonance.
本文报道了一种基于高泛音体声波谐振器(HBAR)振荡器的4.596 GHz频率源的设计与特性。由围绕热控双端口氮化铝 - 蓝宝石HBAR谐振器构建的振荡器产生的2.298 GHz信号,在68°C时品质因数为24,000,该信号倍频至2 - 4.596 GHz,即铯原子钟频率的一半。在2.298 GHz下测量得到HBAR的频率温度系数为 -23 ppm/°C。所测4.596 GHz源的相位噪声在1 kHz频偏时为 -105 dB rad(2)/Hz,在100 kHz频偏时为 -150 dB rad(2)/Hz。4.596 GHz输出信号在基于铯微腔的实验室原型相干布居囚禁原子钟中用作本地振荡器。通过精细调节2.298 GHz HBAR振荡器环路中实现的压控移相器,将信号稳定到原子跃迁频率上,无需高功耗的直接数字合成。自由运行振荡器的短期分数频率稳定性在一秒积分时间时为1.8×10(-9)。在锁定状态下,在初步的概念验证实验中,其在长达几秒的时间内提高到6.6×10(-11) τ(-1/2)的水平,并且发现受检测到的CPT共振的信噪比限制。