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An electronic differential light wavelength sensor based on Michelson interferometer

机译:基于迈克尔逊干涉仪的电子差分光波长传感器

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摘要

There are several cases in which the measurement of light frequency changes is necessary. For example, it is noteworthy to define the stability of output frequency (wavelength) of a laser beam. Besides, high speed light frequency sensors can be used in optical frequency modulation which has advantages including low cost, high data rate and low noise modulation. Nowadays, for transmitting optical signals, the usual method is converting the message signal to a digital signal and transmitting it with a special digital modulation and after receiving, it will be converted to an analog signal. The mentioned sections are complex and expensive. Sending a digital signal (pulse) through a non-linear optical medium (optical fiber) may cause undesirable effects such as generating harmonics and energy dispersion in the medium. In this case, we are able to send an analog message as an analog optical signal by a tunable laser diode and receive it by this sensor. Also transmitting digital signals with usual digital modulations such as frequency shift keying will be possible. In this work, we present a new differential light frequency sensor based on an integrated Michelson interferometer whose precision in detecting wavelength changes is less than 0.001 nm.
机译:在某些情况下,必须测量光频率的变化。例如,值得注意的是定义激光束的输出频率(波长)的稳定性。此外,高速光频率传感器可用于光频率调制,其具有包括低成本,高数据速率和低噪声调制的优点。如今,对于传输光信号,通常的方法是将消息信号转换为数字信号,并通过特殊的数字调制进行传输,然后在接收后将其转换为模拟信号。提到的部分是复杂且昂贵的。通过非线性光学介质(光纤)发送数字信号(脉冲)可能会导致不良影响,例如在介质中产生谐波和能量分散。在这种情况下,我们能够通过可调激光二极管将模拟消息作为模拟光信号发送并通过此传感器接收。还可以通过常规数字调制(例如频移键控)传输数字信号。在这项工作中,我们提出了一种基于集成迈克尔逊干涉仪的新型差分光频率传感器,其检测波长变化的精度小于0.001 nm。

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