NEWPORT 5600-10 CALIBRATION and NEWPORT 5600-10 REPAIR

 
A calibration by Custom-Cal is performed by engineers with extensive OEM experience. We have the expertise and the necessary standards to perform the NEWPORT 5600-10 Calibration, onsite calibration may be available. We specialize in quick turnaround times and we can handle expedited deliveries upon request.

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   NEWPORT 5600-10   Description / Specification:    
NEWPORT 5600-10 10 A Laser Diode Driver

The Newport 5600-10 Laser Diode Driver operates in either CW or Quasi-CW (QCW) mode with up to 10 A of output current. The instrument is capable of driving multiple high-power laser diode bars in series. Full 16-bit control and characterization (L, V, I) of laser diodes is attainable via the IEEE-488 or RS-232 interface. An internal function generator is programmable from 200 Hz–300 kHz with either a sinewave, triangle or squarewave output, allowing signal modulation in both the constant current (ACC) mode and in constant power (APC) mode. In addition, an external analog modulation input port is included allowing modulation of the output current using other waveforms and frequencies. Specifications. Output Current Range (CW): 0 to 10 A. Output Current Resolution: 153 µA. Output Current Accuracy: ±(0.03% + 2 mA). Noise/Ripple (rms): < 10 mA. Temperature Coefficient (ppm FS/°C): <200. Short-Term Stability (1 h) (ppm FS): <200. Output Compliance Voltage Range(CW): 1.5 to 30V. Current Limit Range: 0 to 10 mA. Resolution: 100 mA. Accuracy: 100 mA. Internal Function Generator Waveforms: sine, square, triangle. Internal Function Generator Frequency Range: 200 Hz to 300 kHz.



 

Standard Calibration $285.00 *
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*This is a Web introductory price for one calibration of the NEWPORT 5600-10. Price does not in most cases include measurement performance data. Pricing does include NIST traceable calibration and issue of a calibration certificate and calibration label. Pricing may vary slightly due to volume and location of laboratory supporting calibration. Volume pricing may apply. On-site fees may apply depending on logistics, location and volume of work to be completed during the visit.


Related Optical Terms and Definitions. For a complete list go to our  Terms and Definitions Page.

Bandwidth
Bandwidth is the difference between the upper and lower frequencies in a contiguous set of frequencies within which a fiber optic component, link or network will operate.

Extinction Ratio (ER)
Extinction Ratio is the ratio of two optical power levels, of a digital signal generated by an optical source, (example a laser diode), where P1 is the optical power level generated when the light source is "on," and P0 is the power level generated when the light source is "off." The extinction ratio may be expressed as a fraction, in dB, or as a percentage.

Optical Signal-to-noise Ratio (OSNR)
Optical Signal-to-noise ratio is the ratio between the signal power and the noise power in a given bandwidth. Most commonly a reference bandwidth of 0.1 nm is used. This bandwidth is independent from the modulation format, the frequency and the receiver. For instance a OSNR of 20dB/0.1nm could be given, even the signal of 40 GBit DPSK would not fit in this bandwidth. OSNR is measured with a Optical Spectrum Analyzer. It is generally measured at the wavelength of interest.

Repeatability
Repeatability is the variation in a number of repeated measured quantities when measurement conditions are changed and restored. The value corresponds to half the spread between the minimum and maximum value measured.

Wavelength Repeatability
Wavelength Repeatability is the random uncertainty in reproducing a wavelength after detuning and re-setting the wavelength. The wavelength repeatability is ± half the span between the maximum and the minimum value of all actual values of these wavelengths. Example test condition: uninterrupted TLS output power, constant power level, temperature within operating temperature range, coherence control off, short time span. Note: NOTE The long-term wavelength repeatability can be obtained by taken the wavelength repeatability and wavelength stability into account.


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