{
    "author": "Joshua P. Toomey",
    "author_email": "josh.toomey@mq.edu.au",
    "data_type": "Time Series, Optical Spectra",
    "description": "Output power time series and optical spectra from an edge-emitting, multiple quantum well 830nm semiconductor laser subject to optical feedback. Data recorded for different combinations of optical feedback level and laser injection current. Detection bandwidth 4 GHz and sampling rate 20 GSa/s. \n\n Full details here http://research.science.mq.edu.au/photonics-dynamical-systems/our-research/semiconductor-lasers-with-optical-feedback/bulk-optic-4-ghz-bw-osa/ \n\n The data is stored in HDF5 file format. For information on how to access data in this format see https://research.science.mq.edu.au/photonics-dynamical-systems/open-science-web-database/using-hdf5-files/",
    "detailed_info": "This data is being provided to be used in the context of the SIEF project 'Big Data Knowledge Discovery'.\nAny use of this data should cite the following reference: J. P. Toomey and D. M. Kane, 'Mapping the dynamic complexity of a semiconductor laser with optical feedback using permutation entropy,' Optics Express 22 (2), 1713-1725 (2014).\nThis data set was recorded from an experimental semiconductor laser subject to optical feedback on 14/09/12. Laser wavelength ~ 830nm. External cavity round trip time 4.5ns.\nDuring the experiment, 2 system parameters were varied: the optical feedback level and laser injection current. - Optical feedback was varied by changing the RF power to an acousto-optic modulator (AOM) which varies the amount of laser power transmitted in the 0th order beam. A voltage between 0V-1V corresponds to maximum transmission (0V) and minimum transmission (1V). The actual power transmitted by the AOM is not a linear relationship with voltage. Relative feedback level can be approximated from the reduction in laser threshold. - Laser injection is controlled by directly varying the current supply to the device (Profile ITC510 Laser Diode Combi-controller). Laser was held at a constant 25C.\nThe dataset contains 123,201 files containing output power time series recorded from the laser using a fast photodiode (Discovery Semiconductors DCS30S 22GHz) and 4GHz realtime oscilloscope (Agilent 54854A) and optical spectra recorded on an Anritsu MS9710C with 0.1nm resoltuion and 1kHz VBW for different settings of: - Injection (351 values = 35mA to 70mA in 0.1mA steps) - Feedback (351 values from 0.2V to 0.9V in 0.002V steps)\nThe filenames consist of the AOM and INJ values at which the data was recorded: e.g. AOM_0.642V_INJ_45.2mA.h5 : feedback = 0.642 V, injection = 45 mA\nThese values are also recorded in the file attributes as 'var1' and 'var2'.\nEach hdf5 file consist of a 2 datasets called 'TimeSeries' and 'OpticalSpectrum'. TimeSeries contains a time series of amplitude values measured as the voltage across the 50ohm oscilloscope input. Time series were sampled at 20GSamples/s (50ps per data point) and contain 20,000pts for a total record length of 1microsecond.\nOpticalSpectrum contains a single spectrum containing 1001 sample points between 825nm and 840nm.",
    "groups": [
        "Optical Feedback",
        "Semiconductor Laser"
    ],
    "link": "http://research.science.mq.edu.au/photonics-dynamical-systems/our-research/semiconductor-lasers-with-optical-feedback/bulk-optic-4-ghz-bw-osa/",
    "maintainer": "Dr Joshua P Toomey, MQ Photonics Research Centre, Dept of Physics and Astronomy, Macquarie University",
    "maintainer_email": "josh.toomey@mq.edu.au",
    "reference": "J. P. Toomey and D. M. Kane, 'Mapping the dynamic complexity of a semiconductor laser with optical feedback using permutation entropy,' Optics Express 22 (2), 1713-1725 (2014).",
    "tags": [
        "Optical Feedback",
        "Semiconductor Laser"
    ],
    "version": "1.0"
}