Institute for Research in Electronics and Applied Physics, University of Maryland , College Park, Maryland 20740, United States.
Department of Electrical and Computer Engineering, University of Maryland , College Park, Maryland 20740, United States.
Nano Lett. 2017 Sep 13;17(9):5811-5816. doi: 10.1021/acs.nanolett.7b02931. Epub 2017 Aug 24.
Photoconductive antennas are widely used for time-resolved detection of terahertz (THz) pulses. In contrast to photothermoelectric or bolometric THz detection, the coherent detection allows direct measurement of the electric field transient of a THz pulse, which contains both spectral and phase information. In this Letter, we demonstrate for the first time photoconductive detection of free-space propagating THz radiation with thin flakes of a van der Waals material. Mechanically exfoliated flakes of black phosphorus are combined with an antenna that concentrates the THz fields to the small flake (∼10 μm). Similar performance is reached at gating wavelengths of 800 and 1550 nm, which suggests that the narrow bandgap of black phosphorus could allow operation at wavelengths as long as 4 μm. The detected spectrum peaks at 60 GHz, where the signal-to-noise ratio is of the order of 40 dB, and the detectable signal extends to 0.2 THz. The measured signal strongly depends on the polarization of the THz field and the gating pulse, which is explained by the role of the antenna and the anisotropy of the black phosphorus flake, respectively. We analyze the limitations of the device and show potential improvements that could significantly increase the efficiency and bandwidth.
光电导天线广泛用于太赫兹(THz)脉冲的时间分辨检测。与光热电或量热 THz 检测相比,相干检测允许直接测量 THz 脉冲的电场瞬态,其中包含光谱和相位信息。在本信中,我们首次展示了用范德华材料的薄片进行自由空间传播 THz 辐射的光电导检测。通过机械剥落的黑磷薄片与天线结合,将 THz 场集中到小薄片(约 10 μm)上。在 800nm 和 1550nm 的门控波长下达到了类似的性能,这表明黑磷的窄带隙可以允许在长达 4μm 的波长下工作。检测到的光谱在 60GHz 处出现峰值,信噪比约为 40dB,可检测信号扩展到 0.2THz。测量的信号强烈依赖于 THz 场和门控脉冲的偏振,这分别由天线和黑磷薄片的各向异性的作用来解释。我们分析了器件的限制,并展示了潜在的改进,这可以显著提高效率和带宽。