Ironside Daniel J, Salas Rodolfo, Chen Pai-Yen, Le Khai Q, Alú Andrea, Bank Seth R
Opt Express. 2019 Apr 1;27(7):9481-9494. doi: 10.1364/OE.27.009481.
Photomixers at THz frequencies offer an attractive solution to fill the THz gap; however, conventional photomixer designs result in low output powers, on the order of microwatts, before thermal failure. We propose an alternative photomixer design capable of orders of magnitude enhancement of continuous-wave THz generation using a metamaterial approach. By forming a metal-semiconductor-metal (MSM) cavity through layering an ultrafast semiconductor material between subwavelength metal-dielectric gratings, tailored resonance can achieve ultrathin absorbing regions and efficient heat sinking. When mounted to a tunable E-patch antenna, gratings also act as vertically biased electrodes, further enhancing photoconductive gain by reducing the carrier path length to nanoscales. Thus, through these multiplicative enhancements, the metamaterial-enhanced photomixer is projected to generate THz powers in the milliwatt range and exceed the Manley-Rowe limit for frequencies less than 2 THz.
太赫兹频率的光混频器为填补太赫兹频段空白提供了一种颇具吸引力的解决方案;然而,传统的光混频器设计在热失效前输出功率较低,仅为微瓦量级。我们提出了一种采用超材料方法的替代光混频器设计,能够将连续波太赫兹产生提升几个数量级。通过在亚波长金属 - 电介质光栅之间层叠超快半导体材料形成金属 - 半导体 - 金属(MSM)腔,定制的共振可实现超薄吸收区域和高效散热。当安装到可调谐E形贴片天线上时,光栅还可作为垂直偏置电极,通过将载流子路径长度减小到纳米尺度进一步提高光电导增益。因此,通过这些倍增增强效应,超材料增强型光混频器预计能产生毫瓦级的太赫兹功率,并在频率低于2太赫兹时超过曼利 - 罗极限。