Physikalisches Institut, Johann Wolfgang Goethe-Universität, Frankfurt am Main, Germany.
Opt Lett. 2012 Feb 15;37(4):536-8. doi: 10.1364/OL.37.000536.
We demonstrate the principle applicability of antenna-coupled complementary metal oxide semiconductor (CMOS) field-effect transistor arrays as cameras for real-time coherent imaging at 591.4 GHz. By scanning a few detectors across the image plane, we synthesize a focal-plane array of 100×100 pixels with an active area of 20×20 mm2, which is applied to imaging in transmission and reflection geometries. Individual detector pixels exhibit a voltage conversion loss of 24 dB and a noise figure of 41 dB for 16 μW of the local oscillator (LO) drive. For object illumination, we use a radio-frequency (RF) source with 432 μW at 590 GHz. Coherent detection is realized by quasioptical superposition of the image and the LO beam with 247 μW. At an effective frame rate of 17 Hz, we achieve a maximum dynamic range of 30 dB in the center of the image and more than 20 dB within a disk of 18 mm diameter. The system has been used for surface reconstruction resolving a height difference in the μm range.
我们展示了天线耦合互补金属氧化物半导体 (CMOS) 场效应晶体管阵列作为相机在 591.4GHz 下实时相干成像的原理适用性。通过在图像平面上扫描几个探测器,我们合成了一个 100×100 像素的焦平面阵列,其有效面积为 20×20mm2,应用于透射和反射几何成像。单个探测器像素的电压转换损耗为 24dB,噪声系数为 41dB,本振 (LO) 驱动功率为 16μW。对于物体照明,我们使用 590GHz 时功率为 432μW 的射频 (RF) 源。通过准光学方式将图像和 LO 光束进行准光学叠加,实现相干检测,LO 光束功率为 247μW。在 17Hz 的有效帧率下,我们在图像中心实现了 30dB 的最大动态范围,在 18mm 直径的圆盘内实现了超过 20dB 的动态范围。该系统已用于表面重建,可分辨出 μm 范围内的高度差。