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Mounted Turning Mirrors


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Mounted Turning Mirrors

Optical Coatings and Substrates
Optic Cleaning Tutorial

Features

  • Choose from Protected Aluminum, UV Enhanced Aluminum, Protected Gold, or Protected Silver
  • 2 Broadband Dielectric Coatings Available: E02 (450-750 nm) or E03 (750-1100 nm)
  • Compatible with Our SM1 Series of Lens Tubes and 30 mm Cage Systems
  • Part Number and Coating are Engraved on the Housing for Easy Identification

Thorlabs' mounted turning mirrors (see the Graphs tab for reflectivity information) provide additional flexibility when building optical devices from our 30 mm cage system and SM1 lens tube products. The mounted turning mirrors are prealigned so that the reflected beam exits to within ±20 arcmin of 90º, which can reduce the time needed for prototyping, experimenting, and production. In addition the turning mirrors are available with any of six reflective coatings: protected aluminum, UV enhanced aluminum, protected silver, protected gold, E02 broadband dielectric (400-750 nm), or E03 broadband dielectric (750-1100 nm).

The cubes are M6 x 0.5 threaded, but adapters are included for 8-32 or M4 mounting. The entrance and exit ports are feature our SM1 series threading (1.035"-40) and four 4-40 taps that accept our Ø6 mm cage rods.

Item #CM1-M01CM1-P01CM1-G01CM1-F01CM1-E02CM1-E03
Protective CoatingGoldSilverAluminum UV Enhanced AluminumDielectricDielectric
Average Reflectivity
(Wavelength Range)
>96%
(800 nm - 20 μm)
>97.5%
(450 nm - 2 μm)
>96%
(2 - 20 μm)
>90%
(450 nm - 2 μm)
>95%
(2 - 20 μm)
>90%
(250 - 450 nm)
400 - 750 nm750 - 1100 nm
Damage Threshold
with 10 ns pulse, 10 Hz
2 J/cm2
(1064 nm,
Ø1.000 mm)
3 J/cm2
(1064 nm,
Ø1.000 mm)
0.3 J/cm2
(1064 nm,
Ø1.000 mm)
0.3 J/cm2
(355 nm,
Ø0.381 mm)
0.25 J/cm2
(532 nm,
Ø0.803 mm)

1.0 J/cm2
(810 nm,
Ø0.133 mm)

0.5 J/cm2
(1064 nm,
Ø0.433 mm)

Ports 2 Ports with SM1 (1.035"-40) Threading and four 4-40 Taps for Cage Rods
Mirror SubstrateN-BK7N-BK7 Grade AN-BK7
Material-Housing Engraved Black Anodized Aluminum Housing
Surface Flatness (@633 nm) λ/10 (Over Clear Aperture)
Clear Aperture70%
Surface Quality40-20 Scratch-Dig10-5 Scratch-Dig
45°-45°-90° Prism Tolerance ±3 arcmin
Dimensional Tolerance ±0.1 mm

All data shown below is for unpolarized light, unless otherwise stated. The shaded regions in the graphs denote the ranges over which we recommend using these optics.

UV-Enhanced Aluminum Coating (250 - 450 nm)

F01, 8° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for UV-Enhanced Aluminum, 8° AOI
F01, 45° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for UV-Enhanced Aluminum, 45° AOI


Protected Aluminum Coating (450 nm - 20 µm)

G01, 8° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for Protected Aluminum, 8° AOI
G01, 45° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for Protected Aluminum, 45° AOI
G01, 45° AOI, Polarization Dependent

Click to Enlarge
Excel Spreadsheet with Polarization-Dependent Raw Data for Protected Aluminum, 45° AOI


Protected Silver Coating (450 nm - 20 µm)

P01, 8° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for Protected Silver, 8° AOI
P01, 45° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for Protected Silver, 45° AOI
P01, 45° AOI, Polarization Dependent

Click to Enlarge
Excel Spreadsheet with Polarization-Dependent Raw Data for Protected Silver, 45° AOI


Protected Gold Coating (800 nm - 20 µm)

M01, 8° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for Protected Gold, 8° AOI
M01, 45° AOI
Click to Enlarge
Excel Spreadsheet with Raw Data for Protected Gold, 45° AOI
M01, 45° AOI, Polarization Dependent

Click to Enlarge
Excel Spreadsheet with Polarization-Dependent Raw Data for Protected Gold, 45° AOI


These plots show the reflectivity of our -E02 (400 - 750 nm) and -E03 (750 - 1100 nm) dielectric coatings for a typical coating run. The shaded region in each graph denotes the spectral range over which the coating is highly reflective. Due to variations in each run, this recommended spectral range is narrower than the actual range over which the optic will be highly reflective. If you have any concerns about the interpretation of this data, please contact Tech Support. For applications that require a mirror that bridges the spectral range between the dielectric coatings, please consider a metallic mirror.

-E02 Coating (400 - 750 nm)

Excel Spreadsheet with Raw Data for -E02 Coating, 8° and 45° AOI

-E03 Coating (750 - 1100 nm)

Excel Spreadsheet with Raw Data for -E03 Coating, 8° and 45° AOI

Laser Induced Damage Threshold Tutorial

This tutorial is a general overview of how laser induced damage thresholds are measured and how the values may be utilized in determining the appropriateness of an optic for a given application. When choosing optics, it is important to understand the Laser Induced Damage Threshold (LIDT) of the optics being used. The LIDT for an optic greatly depends on the type of laser you are using. Continuous wave (CW) lasers typically cause damage from thermal effects (absorption either in the coating or in the substrate). Pulsed lasers, on the other hand, often strip electrons from the lattice structure of an optic before causing thermal damage. Note that the guideline presented here assumes room temperature operation and optics in new condition (i.e., within scratch-dig spec, surface free of contamination, etc.).

Testing Method

Thorlabs' LIDT testing is done in compliance with ISO/DIS11254 specifications. A standard 1-on-1 testing regime is performed to test the damage threshold.

LIDT metallic mirror

The photograph above is a protected aluminum-coated mirror after LIDT testing. In this particular test, it handled 0.43 J/cm2 (1064 nm, 10 ns pulse, 10 Hz, Ø1.000 mm) before damage.

First, a low-power/energy beam is directed to the optic under test. The optic is exposed in 10 locations to this laser beam for a set duration of time (CW) or number of pulses (prf specified). After exposure, the optic is examined by a microscope (~100X magnification) for any visible damage. The number of locations that are damaged at a particular power/energy level is recorded. Next, the power/energy is either increased or decreased and the optic is exposed at 10 new locations. This process is repeated until damage is observed. The damage threshold is then assigned to be the highest power/energy that the optic can withstand without causing damage. A histogram such as that below represents the testing of one BB1-E02 mirror.

LIDT BB1-E02
Fluence# of Tested LocationsLocations with DamageLocations Without Damage
1.50 J/cm210010
1.75 J/cm210010
2.00 J/cm210010
2.25 J/cm21019
3.00 J/cm21019
5.00 J/cm21091

According to the test, the damage threshold of the mirror was 2.00 J/cm2 (532 nm, 10 ns pulse, 10 Hz, Ø0.803 mm). Please keep in mind that it is only representative of one coating run and that Thorlabs' specified damage thresholds account for coating variances.

Continuous Wave and Long-Pulse Lasers

When an optic is damaged by a continuous wave (CW) laser, it is usually due to the melting of the surface as a result of absorbing the laser's energy or damage to the optical coating (antireflection) [1]. Pulsed lasers with pulse lengths longer than 1 µs can be treated as CW lasers for LIDT discussions. Additionally, when pulse lengths are between 1 ns and 1 µs, LIDT can occur either because of absorption or a dielectric breakdown (must check both CW and pulsed LIDT). Absorption is either due to an intrinsic property of the optic or due to surface irregularities; thus LIDT values are only valid for optics meeting or exceeding the surface quality specifications given by a manufacturer. While many optics can handle high power CW lasers, cemented (e.g., achromatic doublets) or highly absorptive (e.g., ND filters) optics tend to have lower CW damage thresholds. These lower thresholds are due to absorption or scattering in the cement or metal coating.

Linear Power Density Scaling

LIDT in linear power density vs. pulse length and spot size. For long pulses to CW, linear power density becomes a constant with spot size. This graph was obtained from [1].

Intensity Distribution

Pulsed lasers with high pulse repetition frequencies (PRF) may behave similarly to CW beams. Unfortunately, this is highly dependent on factors such as absorption and thermal diffusivity, so there is no reliable method for determining when a high PRF laser will damage an optic due to thermal effects. For beams with a large PRF both the average and peak powers must be compared to the equivalent CW power. Additionally, for highly transparent materials, there is little to no drop in the LIDT with increasing PRF.

In order to use the specified CW damage threshold of an optic, it is necessary to know the following:

  1. Wavelength of your laser
  2. Linear power density of your beam (total power divided by 1/e2 spot size)
  3. Beam diameter of your beam (1/e2)
  4. Approximate intensity profile of your beam (e.g., Gaussian)

The power density of your beam should be calculated in terms of W/cm. The graph to the right shows why the linear power density provides the best metric for long pulse and CW sources. Under these conditions, linear power density scales independently of spot size; one does not need to compute an adjusted LIDT to adjust for changes in spot size. This calculation assumes a uniform beam intensity profile. You must now consider hotspots in the beam or other nonuniform intensity profiles and roughly calculate a maximum power density. For reference, a Gaussian beam typically has a maximum power density that is twice that of the 1/e2 beam (see lower right).

Now compare the maximum power density to that which is specified as the LIDT for the optic. If the optic was tested at a wavelength other than your operating wavelength, the damage threshold must be scaled appropriately. A good rule of thumb is that the damage threshold has a linear relationship with wavelength such that as you move to shorter wavelengths, the damage threshold decreases (i.e., a LIDT of 10 W/cm at 1310 nm scales to 5 W/cm at 655 nm). While this rule of thumb provides a general trend, it is not a quantitative analysis of LIDT vs wavelength. In CW applications, for instance, damage scales more strongly with absorption in the coating and substrate, which does not necessarily scale well with wavelength. While the above procedure provides a good rule of thumb for LIDT values, please contact Tech Support if your wavelength is different from the specified LIDT wavelength. If your power density is less than the adjusted LIDT of the optic, then the optic should work for your application.

Please note that we have a buffer built in between the specified damage thresholds online and the tests which we have done, which accommodates variation between batches. Upon request, we can provide individual test information and a testing certificate. The damage analysis will be carried out on a similar optic (customer's optic will not be damaged). Testing may result in additional costs or lead times. Contact Tech Support for more information.

Pulsed Lasers

As previously stated, pulsed lasers typically induce a different type of damage to the optic than CW lasers. Pulsed lasers often do not heat the optic enough to damage it; instead, pulsed lasers produce strong electric fields capable of inducing dielectric breakdown in the material. Unfortunately, it can be very difficult to compare the LIDT specification of an optic to your laser. There are multiple regimes in which a pulsed laser can damage an optic and this is based on the laser's pulse length. The highlighted columns in the table below outline the pulse lengths that our specified LIDT values are relevant for.

Pulses shorter than 10-11 s cannot be compared to our specified LIDT values with much reliability. In this ultra-short-pulse regime various mechanics, such as multiphoton-avalanche ionization, take over as the predominate damage mechanism [2]. In contrast, pulses between 10-9 s and 10-6 s may cause damage to an optic either because of dielectric breakdown or thermal effects. This means that both CW and pulsed damage thresholds must be compared to the laser beam to determine whether the optic is suitable for your application.

Pulse Durationt < 10-11 s10-11 < t < 10-9 s10-9 < t < 10-6 st > 10-6 s
Damage MechanismAvalanche IonizationDielectric BreakdownDielectric Breakdown or ThermalThermal
Relevant Damage SpecificationN/APulsedPulsed and CWCW

When comparing an LIDT specified for a pulsed laser to your laser, it is essential to know the following:

Energy Density Scaling

LIDT in energy density vs. pulse length and spot size. For short pulses, energy density becomes a constant with spot size. This graph was obtained from [1].

  1. Wavelength of your laser
  2. Energy density of your beam (total energy divided by 1/e2 area)
  3. Pulse length of your laser
  4. Pulse repetition frequency (prf) of your laser
  5. Beam diameter of your laser (1/e2 )
  6. Approximate intensity profile of your beam (e.g., Gaussian)

The energy density of your beam should be calculated in terms of J/cm2. The graph to the right shows why the energy density provides the best metric for short pulse sources. Under these conditions, energy density scales independently of spot size, one does not need to compute an adjusted LIDT to adjust for changes in spot size. This calculation assumes a uniform beam intensity profile. You must now adjust this energy density to account for hotspots or other nonuniform intensity profiles and roughly calculate a maximum energy density. For reference a Gaussian beam typically has a maximum power density that is twice that of the 1/e2 beam.

Now compare the maximum energy density to that which is specified as the LIDT for the optic. If the optic was tested at a wavelength other than your operating wavelength, the damage threshold must be scaled appropriately [3]. A good rule of thumb is that the damage threshold has an inverse square root relationship with wavelength such that as you move to shorter wavelengths, the damage threshold decreases (i.e., a LIDT of 1 J/cm2 at 1064 nm scales to 0.7 J/cm2 at 532 nm):

Pulse Wavelength Scaling

You now have a wavelength-adjusted energy density, which you will use in the following step.

Beam diameter is also important to know when comparing damage thresholds. While the LIDT, when expressed in units of J/cm2, scales independently of spot size; large beam sizes are more likely to illuminate a larger number of defects which can lead to greater variances in the LIDT [4]. For data presented here, a <1 mm beam size was used to measure the LIDT. For beams sizes greater than 5 mm, the LIDT (J/cm2) will not scale independently of beam diameter due to the larger size beam exposing more defects.

The pulse length must now be compensated for. The longer the pulse duration, the more energy the optic can handle. For pulse widths between 1 - 100 ns, an approximation is as follows:

Pulse Length Scaling

Use this formula to calculate the Adjusted LIDT for an optic based on your pulse length. If your maximum energy density is less than this adjusted LIDT maximum energy density, then the optic should be suitable for your application. Keep in mind that this calculation is only used for pulses between 10-11 s and 10-9 s. For pulses between 10-9 s and 10-6 s, the CW LIDT must also be checked before deeming the optic appropriate for your application.

Please note that we have a buffer built in between the specified damage thresholds online and the tests which we have done, which accommodates variation between batches. Upon request, we can provide individual test information and a testing certificate. Contact Tech Support for more information.


[1] R. M. Wood, Optics and Laser Tech. 29, 517 (1997).
[2] Roger M. Wood, Laser-Induced Damage of Optical Materials (Institute of Physics Publishing, Philadelphia, PA, 2003).
[3] C. W. Carr et al., Phys. Rev. Lett. 91, 127402 (2003).
[4] N. Bloembergen, Appl. Opt. 12, 661 (1973).

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Posted Comments:
Poster: clin
Posted Date: 2007-07-27 17:14:13.0
KCB1 is hiding on the bottom and we should add a pic or application idea on top! ( like the pic on related parts on this link, http://www.thorlabs.com/product.cfm?ObjectGroup_ID=2856&pn=KC1 )
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Mounted Turning Mirrors
Based on your currency / country selection, your order will ship from Newton, New Jersey  
+1 Qty Docs Part Number - Universal/Imperial Price Available / Ships
CM1-F01 Support Documentation CM1-F01 Cube-Mounted UV Enhanced Aluminum Turning Mirror $165.12
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CM1-G01 Support Documentation CM1-G01 Cube-Mounted Protected Aluminum Turning Mirror $165.12
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CM1-P01 Support Documentation CM1-P01 Cube-Mounted Protected Silver Turning Mirror $157.60
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CM1-M01 Support Documentation CM1-M01 Cube-Mounted Protected Gold Turning Mirror $165.12
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CM1-E02 Support Documentation CM1-E02 Cube-Mounted E02 Dielectric Turning Mirror, 400-750 nm $215.36
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CM1-E03 Support Documentation CM1-E03 Cube-Mounted E03 Dielectric Turning Mirror, 750-1100 nm $219.52
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Empty Prism/Mirror Cage Cube Mounts
CM1-4ER
(Click to Enlarge)
CM1-4ER with Penta Prism (Optic Sold Separately)
  • Compatible with 30 mm Cage System and SM1 Lens Tubes
  • Four SM1-Threaded Ports
  • Base is Post Mountable via 8-32 (M4) Tap
  • Accepts 1" Cubes and 25 mm Right-Angle Prisms
  • Prism Alignment Pins Provide Accuracy of ±20 arcmin

Thorlabs' Empty Cage Cube accepts 1" optics. The optic is clamped within the CM1-4ER(/M) by tightening three screws. If you ever need to swap the optic in this mount or to use the optic in a different application, simply loosen the three screws to release the optic. The base of these cubes has either an 8-32 or M4 tap for mounting to Ø1/2" Posts. The image to the right shows a penta prism mounted in a CM1-4ER with the outer housing removed.

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+1 Qty Docs Part Number - Universal/Imperial Price Available / Ships
CM1-4ER Support Documentation CM1-4ER Clamping 4-Port Prism/Mirror Cage Cube, 8-32 Tap $125.00
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+1 Qty Docs Part Number - Metric Price Available / Ships
CM1-4ER/M Support Documentation CM1-4ER/M Clamping 4-Port Prism/Mirror Cage Cube, M4 Tap $125.00
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Cage Cube Connector
CM1-CC Application
CM1-CC Connecting 1.5" Cubes (Click to Enlarge)
  • Connect Two 1.5" Wide Cage Cubes Side by Side

The CM1-CC cube connector allows two or more CM1 style cubes to be connected as shown in the image to the right. The current CM1 series, empty cubes, empty dichroic cubes, mounted beamsplitters, and mounted turning mirrors are all compatible with the cube connector.

Alignment Pins
Please note that the connector requires drilled holes on the cube face next to the SM1-threaded (1.035"-40) ports, as the cube connector has alignment pins. If you have an older cube and would like it updated for free, please contact Technical Support. Alternatively, the alignment pins are press-fit inside their mounting holes, and can be pressed out for use with un-drilled cubes.

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+1 Qty Docs Part Number - Universal/Imperial Price Available / Ships
CM1-CC Support Documentation CM1-CC 30 mm Cage Cube Connector for CM1-4E Series Cubes $42.00
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