DiLazaro Thomas, Nehmetallah George
Opt Express. 2017 Feb 6;25(3):2327-2340. doi: 10.1364/OE.25.002327.
Swept-wavelength reflectometry is an absolute distance measurement technique with significant sensitivity and detector bandwidth advantages over normal pulsed, time-of-flight methods. Although several tunable laser sources exist, many exhibit short coherence lengths or require mechanical tuning components. Semiconductor distributed feedback laser diodes (DFBs) are advantageous as a swept source because they exhibit a narrow instantaneous linewidth and can be frequency-swept simply via a single injection current. Here, we present a novel bandwidth generation technique that uses a compact, monolithic, 12-element DFB array to create an effectively continuous, gap-free sweep. Each DFB is sequentially swept over 3.5 nm at 1,600 THz/s using a shaped current pulse, ensuring spectral overlap between each element. After combining the self-heterodyned return signatures, the transform-limited resolution of the 43.6 nm sweep is demonstrated to be ~27.4 μm in air with a precision of 0.18 μm at a distance of 1.4 m.
扫频反射测量法是一种绝对距离测量技术,与普通脉冲飞行时间法相比,具有显著的灵敏度和探测器带宽优势。尽管存在几种可调谐激光源,但许多都具有较短的相干长度或需要机械调谐组件。半导体分布反馈激光二极管(DFB)作为扫频源具有优势,因为它们具有窄的瞬时线宽,并且可以通过单一注入电流简单地进行频率扫描。在此,我们提出一种新颖的带宽生成技术,该技术使用紧凑的单片12元件DFB阵列来创建有效连续、无间隙的扫描。每个DFB使用整形电流脉冲以1600太赫兹/秒的速度在3.5纳米范围内顺序扫描,确保每个元件之间的光谱重叠。在组合自外差返回信号后,在空气中43.6纳米扫描的变换极限分辨率被证明在1.4米的距离处约为27.4微米,精度为0.18微米。