Vishal Choudhury
Indian Institute of Science
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Publication
Featured researches published by Vishal Choudhury.
Optical Components and Materials XV | 2018
Roopa Prakash; Vishal Choudhury; S. Arun; V. R. Supradeepa
Continuous-wave(CW) supercontinuum sources find applications in various domains such as imaging, spectroscopy, test and measurement. They are generated by pumping an optical fiber with a CW laser in the anomalous-dispersion region close to its zero-dispersion wavelength. Modulation instability(MI) sidebands are created, and further broadened and equalized by additional nonlinear processes generating the supercontinuum. This necessitates high optical powers and at lower powers, only MI sidebands can be seen without the formation of the supercontinuum. Obtaining a supercontinuum at low, easily manageable optical powers is attractive for many applications, but current techniques cannot achieve this. In this work, we propose a new mechanism for low power supercontinuum generation utilizing the modified MI gain spectrum for a line-broadened, decorrelated pump. A novel two-stage generation mechanism is demonstrated, where the first stage constituting standard telecom fiber slightly broadens the input pump linewidth. However, this process in the presence of dispersion, acts to de-correlate the different spectral components of the pump signal. When this is sent through highly nonlinear fiber near its zero-dispersion wavelength, the shape of the MI gain spectrum is modified, and this process naturally results in the generation of a broadband, equalized supercontinuum source at much lower powers than possible using conventional single stage spectral broadening. Here, we demonstrate a ~0.5W supercontinuum source pumped using a ~4W Erbium-Ytterbium co-doped fiber laser with a bandwidth spanning from 1300nm to 2000nm. We also demonstrate an interesting behaviour of this technique of relative insensitivity to the pump wavelength vis-a-vis zero-dispersion wavelength of the fiber.
Components and Packaging for Laser Systems IV | 2018
Vishal Choudhury; K. P. Nagarjun; Roopa Prakash; V. R. Supradeepa
A simple and powerful method using continuous wave supercontinuum lasers is demonstrated to perform spectrally resolved, broadband frequency response characterization of photodetectors in the NIR Band. In contrast to existing techniques, this method allows for a simple system to achieve the goal, requiring just a standard continuous wave(CW) high-power fiber laser source and an RF spectrum analyzer. From our recent work, we summarize methods to easily convert any high-power fiber laser into a CW supercontinuum. These sources in the time domain exhibit interesting properties all the way down to the femtosecond time scale. This enables measurement of broadband frequency response of photodetectors while the wide optical spectrum of the supercontinuum can be spectrally filtered to obtain this information in a spectrally resolved fashion. The method involves looking at the RF spectrum of the output of a photodetector under test when incident with the supercontinuum. By using prior knowledge of the RF spectrum of the source, the frequency response can be calculated. We utilize two techniques for calibration of the source spectrum, one using a prior measurement and the other relying on a fitted model. Here, we characterize multiple photodetectors from 150MHz bandwidth to >20GHz bandwidth at multiple bands in the NIR region. We utilize a supercontinuum source spanning over 700nm bandwidth from 1300nm to 2000nm. For spectrally resolved measurement, we utilize multiple wavelength bands such as around 1400nm and 1600nm. Interesting behavior was observed in the frequency response of the photodetectors when comparing broadband spectral excitation versus narrower band excitation.
european quantum electronics conference | 2017
Vishal Choudhury; S. Arun; Roopa Prakash; V. R. Supradeepa
Continuous-wave (CW) super-continua have found applications in various domains such as sensing, spectroscopy, test and measurement and generation of broadly tunable lasers. CW supercontinua are implemented by high power pumping of a fiber in the anomalous dispersion regime, close to its zero-dispersion [1-3]. Pumped by Ytterbium doped fiber lasers, photonic crystal fibers are necessary since conventional silica fibers have zero dispersion only beyond 1310nm [1]. However, this approach has limitations arising from the complexities of using photonic crystal fibers. It is desirable to have an all fiber supercontinuum using standard silica fibers. However, sources at the 1.5micron band, where highly nonlinear fibers with zero dispersion are easily available are limited in power. Further, the power density achieved in such sources is poor in the normal dispersion region (between 1–1.5micron) [2-3]. Here, we demonstrate a novel technique for high power, high efficiency, supercontinua generation using the recently proposed cascaded Raman fiber amplifier architecture [4] for Raman lasers.
Photonics | 2016
Roopa Prakash; Vishal Choudhury; V. R. Supradeepa
We demonstrate a 3.2W continuous-wave supercontinuum pumped by an Erbium-Ytterbium fiber-laser. A novel, two-fiber cascade for generation is demonstrated with very interesting results. The continuum spanned from 1300nm to ~1900nm with over 300nm at spectral-density>1mW/nm.
Photonics | 2016
S. Arun; Vishal Choudhury; Roopa Prakash; V. R. Supradeepa
conference on lasers and electro optics | 2018
S. Arun; Vishal Choudhury; V. Balaswamy; V. R. Supradeepa
Optics Letters | 2018
V. Balaswamy; S. Arun; Santosh Aparanji; Vishal Choudhury; V. R. Supradeepa
Optics Express | 2018
S. Arun; Vishal Choudhury; V. Balaswamy; Roopa Prakash; V. R. Supradeepa
IEEE Photonics Technology Letters | 2018
S. Arun; Vishal Choudhury; Roopa Prakash; V. R. Supradeepa
Applied Optics | 2018
Vishal Choudhury; S. Arun; Roopa Prakash; V. R. Supradeepa