Multi-Element Lens Design for Diffraction-Limited Performance
Simplifies Free-Space Laser to Fiber Coupling
Lens Substrate: N-SF6
Non-Magnetic Stainless Steel Housing
The F810SMA Series of fiber collimation packages is pre-aligned to collimate a laser beam propagating from the tip of an SMA-connectorized fiber with diffraction-limited performance at the design wavelength. Since the F810 Series fiber collimators do not have any movable parts, they are compact and not susceptible to misalignment. Due to chromatic abberation, the effective focal length (EFL) of the doublet lens is wavelength dependent. As a result, these collimators will only perform optimally at the design wavelength. The doublet lens is factory aligned so that it is one focal length away from the fiber tip when inserted into the collimator. This distance is equal to the focal length of the aspheric lens at the design wavelength. In addition, the doublet lens has an AR coating that minimizes surface reflections.
We can align collimation packages at custom wavelengths if a standard version is not suitable for your application. We also offer a line of adjustable collimation packages called FiberPorts that are well suited for a wide range of wavelengths and are ideal solutions for adjustable, compact fiber couplers. For other collimation and coupling options, please contact our Technical Support group.
We recommend using these collimators with our AR-coated multmode fiber optic patch cables. These cables feature an antireflective coating on one fiber end for increased transmission and improved return loss at the fiber to free space interface. Alternatively, our large selection of standard fiber patch cables can also be used.
a For optimal collimation these packages should be used at the alignment wavelength. For some applications they may also be used within the AR coating range. Contact Tech Support at 973-579-7227 or techsupport@thorlabs.com for custom alignment packages. b For data on AR coatings, refer to the AR Coatings Tab above. c Collimated Beam Diameter: Theoretical 1/e2 diameter @ 1 focal length from lens; fibers: 460HP (543 nm), SM600 (635 nm), 780HP (780 nm), SM980-5.8-125 (1064 nm), SMF-28 (1310 & 1550 nm), SM2000 (2000 nm) d Theoretical full-angle beam divergence; fibers: 460HP (543 nm), SM600 (635 nm), 780HP (780 nm), SM980-5.8-125 (1064 nm), SMF-28 (1310 & 1550 nm), SM2000 (2000 nm)
Theoretical Approximation of the Divergence Angle
The divergence angle is easy to approximate theoretically using the formula shown below as long as the light emerging from the fiber has a Gaussian intensity profile. This works well for single mode fibers, but will underestimate the divergence angle for multimode fibers where the light emerging from the fiber has a non-Gaussian intensity profile.
θ
Divergence Angle
D
Mode-Field Diameter (MFD)
f
Focal Length of Collimator
The divergence angle (in Degrees) where D and f must be in the same units.
Example Calculation For F810FC-543 package collimating 515 nm light from 460HP fiber:
D = 3.5 µm
f ≈ 34.7 mm (approximate, since design wavelength is 543 nm)
Using the equation given above, we can calculate the approximate divergence angle:
These fiber collimation packages are pre-aligned to collimate light from an FC/PC-, FC/APC-, or SMA-connectorized fiber. Each collimation package is factory aligned to provide diffraction-limited performance at one of six wavelengths: 405, 543, 633, 780, 1064, 1310, or 1550 nm. Although it is possible to use the collimator at detuned wavelengths, they will only perform optimally at the design wavelength due to chromatic aberration, which causes the effective focal length of the spheric lens to have a wavelength dependence.
For large beam diameters (Ø6.6 - Ø8.5 mm), Thorlabs offers FC/PC, SMA, and FC/APC air-spaced doublet collimators. These collimation packages are pre-aligned at the factory to collimate a laser beam propagating from the tip of an FC or SMA conectorized fiber and provide diffraction-limited performance at the design wavelength.
These snap-on collimators are designed to connect onto the end of an FC/PC or FC/APC connector and contain an AR-coated aspheric lens. The distance between the aspheric lens and the tip of the FC-terminated fiber can be adjusted to compensate for focal length changes or to recollimate the beam at the wavelength and distance of interest.
These compact, ultra-stable FiberPort micropositioners provide an easy-to-use, stable platform for coupling light into and out of FC/PC, FC/APC, or SMA terminated optical fibers. It can be used with single mode, multimode, or PM fibers and can be mounted onto a post, stage, platform, or laser. The built-in aspheric or achromatic lens is available with three different AR coatings and has five degrees of alignment adjustment (3 translational and 2 pitch). The compact size and long-term alignment stability make the FiberPort an ideal solution for fiber coupling, collimation, or incorporation into OEM systems.
Thorlabs' High Quality Triplet Fiber Collimation packages use air-spaced triplet lenses that offer superior beam quality performance when compared to aspheric lens collimators. The benefits of the low-aberration triplet design include an M2 term closer to 1 (Gaussian), less divergence, and less wavefront error.
Thorlabs' metallic-coated Reflective Collimators are based on a 90° off-axis parabolic mirror. Mirrors, unlike lenses, have a focal length that remains constant over a broad wavelength range. Due to this intrinsic property, a parabolic mirror collimator does not need to be adjusted to accommodate various wavelengths of light, making them ideal for use with polychromatic light. Our reflective collimators are ideal for single-mode fiber.
Our pigtailed collimators come with one meter of either single mode or multimode fiber, have the fiber and AR-coated aspheric lens rigidly potted inside the stainless steel housing, and are collimated at one of six wavelengths: 532, 830, 1030, 1064, 1310, or 1550 nm. Although it is possible to use the collimator at any wavelength within the coating range, the coupling loss will increase as the wavelength is detuned from the design wavelength.
Thorlabs offers gradient index (GRIN) fiber collimators that are aligned for either 980, 1064, 1310, or 1550 nm and have either FC connectorized, APC connectorized, or unterminated fibers. Our GRIN collimators feature a Ø1.8 mm clear aperture, are AR-coated to ensure low back reflection into the fiber, and are coupled to standard single mode or graded-index multimode fibers.
These graded-index (GRIN) lenses are AR coated for applications at 630, 830, 1060, 1300, or 1560 nm that require light to propagate through one fiber, then through a free-space optical system, and finally back into another fiber. They are also useful for coupling light from laser diodes into fibers, coupling the output of a fiber into a detector, or collimating laser light. Our GRIN lenses are designed to be used with our Pigtailed Glass Ferrules and GRIN/Ferrule sleeves.
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Posted Comments:
Poster: ira02
Posted Date: 2013-03-14 12:03:24.3
Hello,
Would it be possible to have a ZEMAX file for the F810SMA-543 collimator please?
Best Regards,
Ian Ashton
Poster: tcohen
Posted Date: 2013-03-14 13:23:00.0
Response from Tim at Thorlabs: Thank you for contacting us Ian. I will send you the Zemax file for your review.
Poster: jlow
Posted Date: 2012-10-26 15:11:00.0
Response from Jeremy at Thorlabs: I will get in touch with you directly regarding the Zemax files for these and your applications.
Poster: fapoliveira
Posted Date: 2012-10-26 07:29:48.53
Dear Sirs,
I would like to have the zemax file for the F810FC-1310 and F810FC-1550 collimators.
Thank you
Poster: tcohen
Posted Date: 2012-05-01 13:39:00.0
Response from Tim at Thorlabs: Thank you for your feedback! We do offer our Air-Spaced Doublet Collimators in a 2um APC compatible version: the F810APC-2000. We are also looking to expand our optics and our Fixed Fiber Optic Collimation Packages to include a 2um APC version in the near future.
Poster: kkmion
Posted Date: 2012-05-01 04:12:49.0
Do you supply the 2µm FC/APC Collimation Package?
Poster: tcohen
Posted Date: 2012-02-29 09:33:00.0
Response from Tim at Thorlabs: Thank you for your feedback. I have contacted you directly with the F810SMA-543 Zemax file.
Poster: paul.lauria
Posted Date: 2012-02-28 21:10:12.0
Hi, I too would like a zemax file, but for the F810SMA-543. Thank you.
Poster: Thorlabs
Posted Date: 2011-01-31 16:42:53.0
Response from Javier at Thorlabs to Brice: we have sent you the ZEMAX files for the F810SMA-780 large diameter collimator. We are also working on compiling all the files and will publish them on the web in the future.
Poster: brice
Posted Date: 2011-01-24 19:29:26.0
I was wondering if it would be possible to get the optalix or zemax files for this component?
Many Thanks
Poster: Thorlabs
Posted Date: 2010-08-19 11:59:25.0
Response from Javier at Thorlabs to jiajingyuwhu: Thank you for your feedback. For your application, the largest beam diameter that can be used at the input is actually limited by the clear aperture of the large lens used on the F810 collimator, which is 18 mm. So, assuming that you have an input beam diameter of 17 mm (8.5 mm radius), a wavelength of 405 nm, and a focal length of 32.52 nm (this is the EFL of the collimator at 405nm), you can calculate the diffraction limited spot at the 99% contour using the following formula:
D = (f x lambda)/radius
The resulting spot size is ~ 1.55 um, which is much smaller that the diameter of your fiber, so the collimator should be able to effectively focus the collimated beam.
Poster: jiajingyuwhu
Posted Date: 2010-08-18 21:16:50.0
Ive bougth your product FC810SMA-custom(designed at 405nm)
I want to use it to focused a collimated light beam into a fiber (NA=0.48 0.6mm diameter fiber)
I want to ask what is the largest diameter of the collimated light beam?
I measured the collimated lens diameter is about 17mm, if it means that the largest permited diameter is 17mm?
wish your reply~~~
Click on any phrase below to search our site using our new Search Engine:
Multi-Element Lens Design for Diffraction-Limited Performance
Simplifies Free-Space Laser to Fiber Coupling
Lens Substrate: N-SF6
Non-Magnetic Stainless Steel Housing
Accepts Connectors with up to 2.1 mm Wide Keys
The F810FC Series of fiber collimation packages is pre-aligned to collimate a laser beam propagating from the tip of an FC/PC-connectorized fiber with diffraction limited performance at the design wavelength. Since the F810 Series fiber collimators do not have any movable parts, they are compact and not susceptible to misalignment. Due to chromatic abberation, the effective focal length (EFL) of the doublet lens is wavelength dependent. As a result, these collimators will only perform optimally at the design wavelength. The doublet lens is factory aligned so that it is one focal length away from the fiber tip when inserted into the collimator. This distance is equal to the focal length of the aspheric lens at the design wavelength. In addition, the doublet lens has an AR coating that minimizes surface reflections.
We can align collimation packages at custom wavelengths if a standard version is not suitable for your application. We also offer a line of adjustable collimation packages called FiberPorts that are well suited for a wide range of wavelengths and are ideal solutions for adjustable, compact fiber couplers. For other collimation and coupling options, please contact our Technical Support group.
We recommend using these collimators with our AR-coated single mode fiber optic patch cables. These cables feature an antireflective coating on one fiber end for increased transmission and improved return loss at the fiber to free space interface.
a For optimal collimation these packages should be used at the alignment wavelength. For some applications they may also be used within the AR coating range. Contact Tech Support at 973-579-7227 or techsupport@thorlabs.com for custom alignment packages. b For data on AR coatings, refer to the AR Coatings Tab above. c Collimated Beam Diameter: Theoretical 1/e2 diameter @ 1 focal length from lens; fibers: 460HP (543 nm), SM600 (635 nm), 780HP (780 nm), SM980-5.8-125 (1064 nm), SMF-28 (1310 & 1550 nm), SM2000 (2000 nm) d Theoretical full-angle beam divergence; fibers: 460HP (543 nm), SM600 (635 nm), 780HP (780 nm), SM980-5.8-125 (1064 nm), SMF-28 (1310 & 1550 nm), SM2000 (2000 nm)
Theoretical Approximation of the Divergence Angle
The divergence angle is easy to approximate theoretically using the formula shown below as long as the light emerging from the fiber has a Gaussian intensity profile. This works well for single mode fibers, but will underestimate the divergence angle for multimode fibers where the light emerging from the fiber has a non-Gaussian intensity profile.
θ
Divergence Angle
D
Mode-Field Diameter (MFD)
f
Focal Length of Collimator
The divergence angle (in Degrees) where D and f must be in the same units.
Example Calculation For F810FC-543 package collimating 515 nm light from 460HP fiber:
D = 3.5 µm
f ˜ 34.7 mm (approximate, since design wavelength is 543 nm)
Using the equation given above, we can calculate the approximate divergence angle:
These fiber collimation packages are pre-aligned to collimate light from an FC/PC-, FC/APC-, or SMA-connectorized fiber. Each collimation package is factory aligned to provide diffraction-limited performance at one of six wavelengths: 405, 543, 633, 780, 1064, 1310, or 1550 nm. Although it is possible to use the collimator at detuned wavelengths, they will only perform optimally at the design wavelength due to chromatic aberration, which causes the effective focal length of the spheric lens to have a wavelength dependence.
For large beam diameters (Ø6.6 - Ø8.5 mm), Thorlabs offers FC/PC, SMA, and FC/APC air-spaced doublet collimators. These collimation packages are pre-aligned at the factory to collimate a laser beam propagating from the tip of an FC or SMA conectorized fiber and provide diffraction-limited performance at the design wavelength.
These snap-on collimators are designed to connect onto the end of an FC/PC or FC/APC connector and contain an AR-coated aspheric lens. The distance between the aspheric lens and the tip of the FC-terminated fiber can be adjusted to compensate for focal length changes or to recollimate the beam at the wavelength and distance of interest.
These compact, ultra-stable FiberPort micropositioners provide an easy-to-use, stable platform for coupling light into and out of FC/PC, FC/APC, or SMA terminated optical fibers. It can be used with single mode, multimode, or PM fibers and can be mounted onto a post, stage, platform, or laser. The built-in aspheric or achromatic lens is available with three different AR coatings and has five degrees of alignment adjustment (3 translational and 2 pitch). The compact size and long-term alignment stability make the FiberPort an ideal solution for fiber coupling, collimation, or incorporation into OEM systems.
Thorlabs' High Quality Triplet Fiber Collimation packages use air-spaced triplet lenses that offer superior beam quality performance when compared to aspheric lens collimators. The benefits of the low-aberration triplet design include an M2 term closer to 1 (Gaussian), less divergence, and less wavefront error.
Thorlabs' metallic-coated Reflective Collimators are based on a 90° off-axis parabolic mirror. Mirrors, unlike lenses, have a focal length that remains constant over a broad wavelength range. Due to this intrinsic property, a parabolic mirror collimator does not need to be adjusted to accommodate various wavelengths of light, making them ideal for use with polychromatic light. Our reflective collimators are ideal for single-mode fiber.
Our pigtailed collimators come with one meter of either single mode or multimode fiber, have the fiber and AR-coated aspheric lens rigidly potted inside the stainless steel housing, and are collimated at one of six wavelengths: 532, 830, 1030, 1064, 1310, or 1550 nm. Although it is possible to use the collimator at any wavelength within the coating range, the coupling loss will increase as the wavelength is detuned from the design wavelength.
Thorlabs offers gradient index (GRIN) fiber collimators that are aligned for either 980, 1064, 1310, or 1550 nm and have either FC connectorized, APC connectorized, or unterminated fibers. Our GRIN collimators feature a Ø1.8 mm clear aperture, are AR-coated to ensure low back reflection into the fiber, and are coupled to standard single mode or graded-index multimode fibers.
These graded-index (GRIN) lenses are AR coated for applications at 630, 830, 1060, 1300, or 1560 nm that require light to propagate through one fiber, then through a free-space optical system, and finally back into another fiber. They are also useful for coupling light from laser diodes into fibers, coupling the output of a fiber into a detector, or collimating laser light. Our GRIN lenses are designed to be used with our Pigtailed Glass Ferrules and GRIN/Ferrule sleeves.
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Posted Comments:
Poster: jjurado
Posted Date: 2011-03-14 16:13:00.0
Response from Javier at Thorlabs to marc.adams: I will send you this file shortly. Regards.
Poster: marc.adams
Posted Date: 2011-03-14 11:46:54.0
Could I also get the Zemax file for the F810FC-1064?
Poster: jjurado
Posted Date: 2011-02-15 09:50:00.0
Response from Javie at Thorlabs to jaraalmonte: I will send you this file shortly.
Poster: jaraalmonte
Posted Date: 2011-02-14 17:03:21.0
Hi, do you have a zemax file for the F810FC-635 collimator?
Poster: Adam
Posted Date: 2010-04-16 13:11:13.0
A response from Adam at Thorlabs to carlsonrt: It depends on the beam diameter of your light and the type of fiber you are using. We do not recommend using the coated lenses with powers higher than 100W/cm^2. In regards to the fiber, I am assuming it is single mode fiber. If that is the case and the core size is approximately 10um, then the maximum power the silica fiber can handle is 1MW/cm^2 or ~700mW. I would like to email you directly about this to see exactly how you are using this collimator. If you are coupling light into a fiber, we may suggest something that has more adjustments like a fiber port, PAF-X-5-C.
Poster: carlsonrt
Posted Date: 2010-04-16 11:13:19.0
Regarding the F810-1550-FC collimator:
I need to use this collimator up to a maximum power of 1watt, with 1550PMF/FC input. My input source has an optical isolator such that reflected power in the fiber is not a problem. Is there any reason the fiber and collimator could not be used at a 1W power level ?
Click on any phrase below to search our site using our new Search Engine:
Multi-Element Lens Design for Diffraction-Limited Performance
Simplifies Free-Space Laser to Fiber Coupling
Lens Substrate: SFL6
Non-Magnetic Stainless Steel Housing
Accepts Connectors with up to 2.2 mm Wide Keys
The F810APC Series of fiber collimation packages is pre-aligned to collimate a laser beam propagating from the tip of an FC/APC-connectorized fiber with diffraction limited performance at the design wavelength. Since the F810 Series fiber collimators do not have any movable parts, they are compact and not susceptible to misalignment. Due to chromatic abberation, the effective focal length (EFL) of the doublet lens is wavelength dependent. As a result, these collimators will only perform optimally at the design wavelength. The doublet lens is factory aligned so that it is one focal length away from the fiber tip when inserted into the collimator. This distance is equal to the focal length of the aspheric lens at the design wavelength. In addition, the doublet lens has an AR coating that minimizes surface reflections.
We can align collimation packages at custom wavelengths if a standard version is not suitable for your application. We also offer a line of adjustable collimation packages called FiberPorts that are well suited for a wide range of wavelengths and are ideal solutions for adjustable, compact fiber couplers. For other collimation and coupling options, please contact our Technical Support group.
We recommend using these collimators with our AR-coated single mode fiber optic patch cables. These cables feature an antireflective coating on one fiber end for increased transmission and improved return loss at the fiber to free space interface. Alternatively, our large selection of standard fiber patch cables can also be used.
a For optimal collimation these packages should be used at the alignment wavelength. For some applications they may also be used within the 1800 - 2400 nm AR coating range. Contact Tech Support at 973-579-7227 or techsupport@thorlabs.com for custom alignment packages. b For data on AR coatings, refer to the AR Coatings Tab above. c Collimated Beam Diameter: Theoretical 1/e2 diameter @ 1 focal length from lens; fibers: 460HP (543 nm), SM600 (635 nm), 780HP (780 nm), SM980-5.8-125 (1064 nm), SMF-28 (1310 & 1550 nm), SM2000 (2000 nm) d Theoretical full-angle beam divergence; fibers: 460HP (543 nm), SM600 (635 nm), 780HP (780 nm), SM980-5.8-125 (1064 nm), SMF-28 (1310 & 1550 nm), SM2000 (2000 nm)
Theoretical Approximation of the Divergence Angle
The divergence angle is easy to approximate theoretically using the formula shown below as long as the light emerging from the fiber has a Gaussian intensity profile. This works well for single mode fibers, but will underestimate the divergence angle for multimode fibers where the light emerging from the fiber has a non-Gaussian intensity profile.
θ
Divergence Angle
D
Mode-Field Diameter (MFD)
f
Focal Length of Collimator
The divergence angle (in Degrees) where D and f must be in the same units.
Example Calculation For F810FC-543 package collimating 515 nm light from 460HP fiber:
D = 3.5 µm
f ˜ 34.7 mm (approximate, since design wavelength is 543 nm)
Using the equation given above, we can calculate the approximate divergence angle:
These fiber collimation packages are pre-aligned to collimate light from an FC/PC-, FC/APC-, or SMA-connectorized fiber. Each collimation package is factory aligned to provide diffraction-limited performance at one of six wavelengths: 405, 543, 633, 780, 1064, 1310, or 1550 nm. Although it is possible to use the collimator at detuned wavelengths, they will only perform optimally at the design wavelength due to chromatic aberration, which causes the effective focal length of the spheric lens to have a wavelength dependence.
For large beam diameters (Ø6.6 - Ø8.5 mm), Thorlabs offers FC/PC, SMA, and FC/APC air-spaced doublet collimators. These collimation packages are pre-aligned at the factory to collimate a laser beam propagating from the tip of an FC or SMA conectorized fiber and provide diffraction-limited performance at the design wavelength.
These snap-on collimators are designed to connect onto the end of an FC/PC or FC/APC connector and contain an AR-coated aspheric lens. The distance between the aspheric lens and the tip of the FC-terminated fiber can be adjusted to compensate for focal length changes or to recollimate the beam at the wavelength and distance of interest.
These compact, ultra-stable FiberPort micropositioners provide an easy-to-use, stable platform for coupling light into and out of FC/PC, FC/APC, or SMA terminated optical fibers. It can be used with single mode, multimode, or PM fibers and can be mounted onto a post, stage, platform, or laser. The built-in aspheric or achromatic lens is available with three different AR coatings and has five degrees of alignment adjustment (3 translational and 2 pitch). The compact size and long-term alignment stability make the FiberPort an ideal solution for fiber coupling, collimation, or incorporation into OEM systems.
Thorlabs' High Quality Triplet Fiber Collimation packages use air-spaced triplet lenses that offer superior beam quality performance when compared to aspheric lens collimators. The benefits of the low-aberration triplet design include an M2 term closer to 1 (Gaussian), less divergence, and less wavefront error.
Thorlabs' metallic-coated Reflective Collimators are based on a 90° off-axis parabolic mirror. Mirrors, unlike lenses, have a focal length that remains constant over a broad wavelength range. Due to this intrinsic property, a parabolic mirror collimator does not need to be adjusted to accommodate various wavelengths of light, making them ideal for use with polychromatic light. Our reflective collimators are ideal for single-mode fiber.
Our pigtailed collimators come with one meter of either single mode or multimode fiber, have the fiber and AR-coated aspheric lens rigidly potted inside the stainless steel housing, and are collimated at one of six wavelengths: 532, 830, 1030, 1064, 1310, or 1550 nm. Although it is possible to use the collimator at any wavelength within the coating range, the coupling loss will increase as the wavelength is detuned from the design wavelength.
Thorlabs offers gradient index (GRIN) fiber collimators that are aligned for either 980, 1064, 1310, or 1550 nm and have either FC connectorized, APC connectorized, or unterminated fibers. Our GRIN collimators feature a Ø1.8 mm clear aperture, are AR-coated to ensure low back reflection into the fiber, and are coupled to standard single mode or graded-index multimode fibers.
These graded-index (GRIN) lenses are AR coated for applications at 630, 830, 1060, 1300, or 1560 nm that require light to propagate through one fiber, then through a free-space optical system, and finally back into another fiber. They are also useful for coupling light from laser diodes into fibers, coupling the output of a fiber into a detector, or collimating laser light. Our GRIN lenses are designed to be used with our Pigtailed Glass Ferrules and GRIN/Ferrule sleeves.
A response from Ken at Thorlabs to richard.fox: Thank you for your valuable suggestion. The F810APC-635 is now in our plan but it may take a few weeks before it is released. In the mean time, we can do this as a special. Please send your complete contact information to techsupport@thorlabs.com so that we can prepare a quotation for you.
Poster: richard.fox
Posted Date: 2009-12-10 11:14:46.0
If you will be introducing a F810APC-635 anytime soon please let me know. The F810FC-635 doesnt work so well with APC fibers. Thank you
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