Moody Galan, McDonald Corey, Feldman Ari, Harvey Todd, Mirin Richard P, Silverman Kevin L
National Institute of Standards and Technology, 325 Broadway, Boulder, CO 80305, USA.
Optica. 2016 Dec;3(12):1397-1403. doi: 10.1364/OPTICA.3.001397. Epub 2016 Nov 17.
The amplitude and phase of a material's nonlinear optical response provide insight into the underlying electronic dynamics that determine its optical properties. Phase-sensitive nonlinear spectroscopy techniques are widely implemented to explore these dynamics through demodulation of the complex optical signal field into its quadrature components; however, complete reconstruction of the optical response requires measuring both the amplitude and phase of each quadrature, which is often lost in standard detection methods. Here, we implement a heterodyne-detection scheme to fully reconstruct the amplitude and phase response of spectral hole-burning from InAs/GaAs charged quantum dots. We observe an ultra-narrow absorption profile and a corresponding dispersive lineshape of the phase, which reflect the nanosecond optical coherence time of the charged exciton transition. Simultaneously, the measurements are sensitive to electron spin relaxation dynamics on a millisecond timescale, as this manifests as a magnetic-field dependent delay of the amplitude and phase modulation. Appreciable amplitude modulation depth and nonlinear phase shift up to ~0.09×π radians (16°) are demonstrated, providing new possibilities for quadrature modulation at faint photon levels with several independent control parameters, including photon number, modulation frequency, detuning, and externally applied fields.
材料非线性光学响应的幅度和相位能够深入了解决定其光学性质的潜在电子动力学。相位敏感的非线性光谱技术被广泛应用,通过将复光学信号场解调为其正交分量来探索这些动力学;然而,光学响应的完整重建需要测量每个正交分量的幅度和相位,而这在标准检测方法中常常丢失。在此,我们实施了一种外差检测方案,以完全重建来自InAs/GaAs带电量子点的光谱烧孔的幅度和相位响应。我们观察到一个超窄吸收谱和相应的相位色散线形,这反映了带电激子跃迁的纳秒光学相干时间。同时,这些测量对毫秒时间尺度上的电子自旋弛豫动力学敏感,因为这表现为幅度和相位调制的磁场依赖性延迟。展示了可观的幅度调制深度和高达约0.09×π弧度(16°)的非线性相移,为在微弱光子水平下利用包括光子数、调制频率、失谐和外部施加场等几个独立控制参数进行正交调制提供了新的可能性。