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A digitally generated ultrafine optical frequency comb for spectral measurements with 0.01-pm resolution and 0.7-mu s response time

机译:数字生成的超细光学频率梳,用于光谱测量,分辨率为0.01 pm,响应时间为0.7 s

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摘要

Optical spectral measurements are crucial for optical sensors and many other applications, but the prevailing methods, such as optical spectrum analysis and tunable laser spectroscopy, often have to make compromises among resolution, speed, and accuracy. Optical frequency combs are widely used for metrology of discrete atomic and molecular spectral lines. However, they are usually generated by optical methods and have large comb spacing, which limits the resolution for direct sampling of continuous spectra. To overcome these problems, this paper presents an original method to digitally generate an ultrafine optical frequency comb (UFOFC) as the frequency ruler for spectral measurements. Each comb line provides one sampling point, and the full spectrum can be captured at the same time using coherent detection. For an experimental demonstration, we adopted the inverse fast Fourier transform to generate a UFOFC with a comb spacing of 1.46 MHz over a 10-GHz range and demonstrated its functions using a Mach-Zehnder refractive index sensor. The UFOFC obtains a spectral resolution of 0.01 pm and response time of 0.7 mu s; both represent 100-fold improvements over the state of the art and could be further enhanced by several orders of magnitude. The UFOFC presented here could facilitate new label-free sensor applications that require both high resolution and fast speed, such as measuring binding kinetics and single-molecule dynamics.
机译:光谱测量对于光学传感器和许多其他应用至关重要,但是诸如光谱分析和可调谐激光光谱之类的流行方法通常必须在分辨率,速度和精度之间做出折衷。光学频率梳广泛用于离散原子和分子光谱线的计量。但是,它们通常是通过光学方法生成的,并且梳齿间距较大,这限制了直接采样连续光谱的分辨率。为了克服这些问题,本文提出了一种原始方法,以数字方式生成超细光学频率梳(UFOFC)作为频谱测量的频率标尺。每条梳状线提供一个采样点,并且可以使用相干检测同时捕获整个光谱。为了进行实验演示,我们采用了快速傅立叶逆变换来生成在10 GHz范围内梳齿间距为1.46 MHz的UFOFC,并使用Mach-Zehnder折射率传感器演示了其功能。 UFOFC的光谱分辨率为0.01 pm,响应时间为0.7μs。两者都比现有技术提高了100倍,并且可以进一步提高几个数量级。这里介绍的UFOFC可以促进需要高分辨率和快速的新型无标签传感器应用,例如测量结合动力学和单分子动力学。

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