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OCT Common-Path Interferometer


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OCT  Common-Path Interferometer

Item #INT-COM-1300
Wavelength Range1250 - 1350 nm
Insertion Loss: 1300 nm IN to Probe*<1.5 dB (Typ), 2.3 dB (Max)
Insertion Loss: 1300n m IN to VOA IN*<17 dB (Typ), 20 dB (Max)
Insertion Loss: 660 nm IN to Probe Port*<2 dB (Typ), 4 dB (Max)
Output Bandwidth (3 dB)DC - 15 MHz
Saturation Power**70 uW @ 1300 nm
Maximum Input Power
(Damage Threshold)**
20 mW

*Includes connector losses measured at the central wavelength
**Coupled into Probe a or VOA Output port

Features

  • Low Insertion Loss
  • Flat Wavelength Response
  • Integrated Balanced Signal Detection with Active Aliasing Filter
  • Input for 660 nm Alignment Beam
  • Compact Design; Comes Complete with Power Supply

Thorlabs’ INT-COM-1300 interferometer is designed to be used inside a swept source OCT system for common-path OCT applications. It integrates a fiber coupler network for use with an external common-path interferometer probe. These couplers are optimized for flat wavelength response and very low polarization dependant coupling losses. The integrated high-gain balanced detector includes an active aliasing filter that minimizes the generation of aliasing frequencies in the digitized fringe signals for improved image quality.

The module is designed for ease of use, and easy integration using the FC/APC angled fiber adapters. Alignment is made easier due to an additional input for a 660 nm aiming laser and a specially designed WDM coupler that combines the swept laser source (1300 nm) and the alignment laser (660 nm).

INT-COM-1300 Interferometer Specifications

Item #INT-COM-1300
Optical
Wavelength Range1250 - 1350 nm
Fiber Type Corning SMF28e
Fiber PortFC/APC
Insertion Loss: 1300 nm IN to Probe*<1.5 dB (Typ), 2.3 dB (Max)
Insertion Loss: 1300 nm IN to VOA IN*<17 dB (Typ), 20 dB (Max)
Insertion Loss: 660 nm IN to Probe Port*<2 dB (Typ), 4 dB (Max)
Electrical
Detector Material/TypeInGaAs
Detector Wavelength Range800 - 1700 nm
Maximum Responsivity (Typical)1.0 A/W
Output Bandwidth (3 dB)DC - 15 MHz
Transimpedance Gain51 kV/A
DC-Offset< ±5 mV
Saturation Power**70 uW @ 1300 nm
Maximum Input Power (Damage Threshold)**20 mW
Output Impedance50 Ω
Optical ConnectorsFC/APC
Electric Outport PortSMA
Power Supply±12 V, 200 mA
General
Size 120 mm x 80 mm x 21 mm
(4.42" x 3.15" x 0.827")

*Includes connector losses measured at the central wavelength
**Coupled into Probe a or VOA Output port

Power Monitor Ouput

SMA Female

SMA Female

0 - 1.8 V (50 Ω) or 0 - 3.6 V (High Z)

Figure 1 below shows the schematic diagram of INT-COM-1300 internal optical network and a basic OCT application setup.

Schematic of INT-COM-1300

Figure 1: Schematic of INT-COM-1300

The internal fiber network of the INT-COM-1300 is designed for swept source Fourier domain OCT systems in which the signal from both the reference and the sample arm of the interferometer follow a common path configuration. The reflections from both arms are combined to produce the interference fringes which are detected by one channel of the integrated balanced detector. The second channel of the detector may then be used to offset the DC component of the interference signal by using an external variable optical attenuator (VOA) to control the amount of light reaching the second detector channel. 

A 95/5 fiber coupler is used to split the incoming light so that 95% of the light is transmitted to a circulator  and then passed to the WDM coupler which combines the incoming 1300 nm light with the aiming laser for ease of alignment. From the WDM coupler the light exits the probe port for sample observation.  The light reflected from the sample passes back through the WDM coupler and then through the circulator for detection in one channel of the balanced detector.

The 5% of the light which was split from the incoming beam is connected to VOA IN port via a slope compensation coupler. This additional coupler is used to compensate the wavelength dependent coupling ratio. The two coupler design makes the VOA IN signal nearly independent of the OCT laser wavelength allowing broadband DC offset compensation. This is demonstrated by the wavelength response curves shown below.

Figure 2 shows the INT-COM-1300 coupling ratio measured from 1300 nm input  to the probe ports, while Figure 3 shows similar information measured from input port to input of the VAO port.

graph of coupling from input to probe

Figure 2: Wavelength Response of Coupling from Input to Probe Port

graph of coupling from input to VOA for INT-COM-1300

Figure 3: Wavelength Response of Coupling from Input to VAO Input Port

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Posted Comments:
Poster: ggjmlee
Posted Date: 2012-08-10 14:26:33.0
Do I need polraization cotroller to get a signal throught this interferometer?
Poster: jlow
Posted Date: 2012-08-10 09:19:00.0
Response from Jeremy at Thorlabs: You do not need a polarization controller for this because the interferometer does not require polarized light.
Poster: jvigroux
Posted Date: 2011-07-15 11:19:00.0
A response form Julien at Thorlabs: we shoud be able to offer a custom ineterferometer having a bandwidth of 100MHz with a transimpedance gain of 100kV/A. I will contact you directly to see if those values would meet your requirements.
Poster: avle
Posted Date: 2011-07-14 14:11:25.0
Hi there, Is it possible to increase the bandwidth of the TIA from 15mhz to 100mhz by adjusting internal values of the TIA circuit? Thanks!
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