Tekavec Patrick F, Dyke Thomas R, Marcus Andrew H
Department of Physics, University of Oregon, Eugene, Oregon 97403, USA.
J Chem Phys. 2006 Nov 21;125(19):194303. doi: 10.1063/1.2386159.
Studies of wave packet dynamics often involve phase-selective measurements of coherent optical signals generated from sequences of ultrashort laser pulses. In wave packet interferometry (WPI), the separation between the temporal envelopes of the pulses must be precisely monitored or maintained. Here we introduce a new (and easy to implement) experimental scheme for phase-selective measurements that combines acousto-optic phase modulation with ultrashort laser excitation to produce an intensity-modulated fluorescence signal. Synchronous detection, with respect to an appropriately constructed reference, allows the signal to be simultaneously measured at two phases differing by 90 degrees. Our method effectively decouples the relative temporal phase from the pulse envelopes of a collinear train of optical pulse pairs. We thus achieve a robust and high signal-to-noise scheme for WPI applications, such as quantum state reconstruction and electronic spectroscopy. The validity of the method is demonstrated, and state reconstruction is performed, on a model quantum system--atomic Rb vapor. Moreover, we show that our measurements recover the correct separation between the absorptive and dispersive contributions to the system susceptibility.
波包动力学的研究通常涉及对由超短激光脉冲序列产生的相干光信号进行相位选择性测量。在波包干涉测量法(WPI)中,必须精确监测或保持脉冲时间包络之间的间隔。在此,我们介绍一种用于相位选择性测量的新的(且易于实现的)实验方案,该方案将声光相位调制与超短激光激发相结合,以产生强度调制的荧光信号。相对于适当构建的参考信号进行同步检测,可使信号在相差90度的两个相位上同时被测量。我们的方法有效地将相对时间相位与共线光脉冲对序列的脉冲包络解耦。因此,我们为WPI应用(如量子态重构和电子光谱学)实现了一种稳健且高信噪比的方案。在一个模型量子系统——原子铷蒸汽上,证明了该方法的有效性并进行了态重构。此外,我们表明我们的测量恢复了对系统磁化率的吸收和色散贡献之间的正确间隔。