Berger Naum K
Department of Electrical Engineering, Technion—Israel Institute of Technology, Haifa, 32000, Israel.
Appl Opt. 2012 Jan 10;51(2):181-90. doi: 10.1364/ao.51.000181.
A superresolution technique for the measurement of transmission, reflection, and absorption spectra is proposed. An ultrashort laser pulse is propagated in a dispersive element and then periodically phase modulated. The temporal modulation is transformed into periodic spectral modulation, for which the number of harmonics, 2M+1, is determined by the modulation index. The modulated pulse is transmitted through (reflected from) the sample to be tested and measured by a spectrometer. By performing 2M+1 measurements for 2M+1 delays between the dispersed pulse and modulation signal, one can restore the spectral response of the sample with superresolution after simple processing. We numerically demonstrate the measurement of the transmission spectrum of an ultranarrow optical filter with a minimum feature of 0.43 pm by an optical spectrum analyzer with a 10 pm resolution. A twentyfold enhancement of the resolution is achieved in the presence of noise with a level of 0.1%. The advantage of the system is its full reconfigurability.
提出了一种用于测量透射、反射和吸收光谱的超分辨率技术。超短激光脉冲在色散元件中传播,然后进行周期性相位调制。时间调制被转换为周期性光谱调制,其谐波数量2M + 1由调制指数确定。调制后的脉冲通过(从)待测样品透射,并由光谱仪进行测量。通过对色散脉冲和调制信号之间的2M + 1个延迟进行2M + 1次测量,经过简单处理后,就可以用超分辨率恢复样品的光谱响应。我们通过分辨率为10 pm的光谱分析仪,对最小特征为0.43 pm的超窄光学滤波器的透射光谱进行了数值演示。在噪声水平为0.1%的情况下,分辨率提高了20倍。该系统的优点是具有完全可重构性。