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Large Format Narrow Bandpass Filters - A Uniformity ...

Author: becky

Jan. 13, 2025

Large Format Narrow Bandpass Filters - A Uniformity ...

1       Introduction

Large format (>100 mm diameter), narrow bandpass filters (NBPF) are required in many fields. Applications requiring a large field of view drive the need for large collection optics, however high wavelength selectivity provided by narrow, flat-top bandpass optical filtering is also required to facilitate specific and selective analysis of a phenomena or substance of interest.  The diversity of applications of these optics include earth observation remote sensing (whether satellite imaging or UAV mounted LIDAR), astronomical/solar imaging, UV micro-lithography tools, and live animal biological (fluorescence) imaging.

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Different applications can have different demands on an optical filter&#;s wavelength selectivity &#; the characteristic of the filter defined by range and level of wavelengths transmitted by the filter (the passband) and the range and level of wavelengths rejected by the filter (the blocking band) &#; in order to optimize the signal to noise ratio at the detector of a system.  Filters need to be designed and manufactured to achieve the desired wavelength selectivity over the entire clear aperture (CA) of the optic and over the entire range of operating parameters including angle of incidence (AOI) and cone angle, and environmental conditions of use.

In multi-layer, dielectric, thin-film filters, variations in angles of incidence and operating temperature can produce a shift in center wavelength (CWL) &#; increasing AOI causes the filter profile to shift to shorter wavelengths; increasing operating temperature typically causes a shift in the filter profile to longer wavelengths.  These wavelength shifts need to be accounted for in the filter design and manufacturing processes and contribute to an increased requirement for steep transitions from passbands to blocking bands.

Each of these requirements for additional design &#;margin&#; can make the successful manufacture of large NBPF a particular challenge.   To achieve this both superior precision (uniformity and control of filter shape) and superior accuracy (control of center wavelength positioning) are required.

Additionally, many applications, particularly those in remote environments (e.g. deployed in satellite instrumentation), require that the filters maintain their spectral performance characteristics over many years. This requires a very robust filter design and manufacturing strategy along with careful selection and treatment of materials used in production.

Iridian has addressed each of these challenges and has recently demonstrated the successful design and manufacture of an environmentally stable 1.72 nm-wide (FWHM) NBPF centered near 780 nm to within 20 pm of the target over an operating clear aperture >125 mm in diameter.

2        How Much Better is this?

Excellent uniformity control of spectral performance is desirable in all applications of optical filter manufacturing as it increases the coated area that meets specifications.  In the case of small format filters, such as ½&#; to 1&#; spectroscopy filters or very small (~1.5 x 1.5 mm2) filters for fiber-optic telecommunications systems, a broad spectral uniformity can help increase the number of parts yielded from a coating run and therefore reduce the cost per filter.  In the case of very large optics (>100 mm in diameter) the requirement for highly uniform coatings becomes critical to the functionality that can be achieved as uniformity governs the size of clear aperture and/or degree of wavelength selectivity that can be delivered.

2.1      Precision and accuracy

Typical high-end commercial filters demonstrate a uniformity over >100 mm of ~0.1-0.2% of the center wavelength.  The filter described here is coated to within a uniformity of <0.02% of the center wavelength over a clear aperture diameter of >125 mm &#; nearly an order of magnitude improvement in uniformity over the existing high-end benchmark.

With any very narrow band filter uniformity and filter shape are not sufficient to ensure excellent functional performance.  Offset in center wavelength targeting can result in loss of signal if the peak of the NBPF is not aligned with the spectral line of interest- be it a laser wavelength or absorption peak of an analyte of interest.  Typical optical filter manufacturing can target small (<1&#;) filters to within ±100 pm of the target CWL.  The large NBPF created in this work was manufactured to match the target CWL to within ±10 pm (averaged over the clear aperture).

Change in CWL (uniformity) 0.094nm Δ &#; 0.013% Change in Bandwidth (FWHM) 1.705nm &#; 1.735nm Δ &#; 1.8% CWL targeting ±10 pm Δ &#; 0.003% Change in peak Transmittance 98.70% &#; 99.52% Δ &#; 0.82%

2.2      Durability, Reliability, and Stability

Having achieved a remarkable performance level is of no use if the filter cannot survive processing or if it degrades in operational environmental use conditions.  The coating process (energetic magnetron sputtering) and materials used inherently produce robust and reliable coatings.  However, in pushing the deposition conditions and annealing processes we were unsure that we would achieve our typical reliability and durability for this filter.

Nonetheless, the filter successfully passed a series of prescribed environmental durability tests such as mild abrasion (50 strokes cheesecloth at 5N force), solubility (acetone and ethanol dip for 5 minutes), humidity (55 °C and 95% RH for 48 hours), multiple adhesion (rapid tape removal), and thermal vacuum cycling (30 cycles between ±90 °C with 30 min dwell time at each extreme). Additionally, the filter survived without change post-coating sizing (coring) which is a very harsh test for adhesion and filter robustness (it will never experience any similar abuse in use).

Lifetime stability (minimization of change in performance over time and temperature) was also a critical parameter for this filter.  Thermal aging testing (damp heat) models indicates that this filter would shift by <10 pm in CWL if used at 85 °C for 10 years.  Additionally, the stability in performance between use in air and in vacuum was tested as other technologies such as evaporative coating can exhibit shifts between air and vacuum.  No measurable change in CWL between air and vacuum was detected to within the measurement accuracy of the test instruments (±20 pm).

3       Design and Manufacturing Considerations

To produce filters with a steep, narrow bandpass at a fixed center wavelength over a large clear aperture the deposited film quality has to be homogenous across the surface and have low scatter/haze to maximize signal to noise.  Additionally, uniformity stability is needed throughout the coating run to maintain the desired filter shape.  To produce filters with these characteristics careful consideration was necessary with respect to coating target and substrate positions and relative motions, gas flow distribution, in situ temperature control, real-time in situ single wavelength monitoring (SWM), and stability of the coating process.

Parameter Influenced by: Film homogeneity Temperature control, target and substrate position and motion Thickness homogeneity Target and substrate position and motion Scatter/haze/transmission loss Gas flow, temperature control, target and substrate position and motion Filter band shape Single wavelength monitoring, coating process stability

To achieve the CWL accuracy of within ±10pm of the target CWL it was necessary to develop a thermal annealing setup that would ensure uniform annealing over the entire surface of this large, thick filter (large thermal mass).  Since this filter design shifts to longer wavelengths with annealing it was necessary to deliberately target a shorter CWL out of the coater to allow for the CWL of the filter to be iteratively pushed to slightly longer wavelengths with each anneal cycle.   Additionally, the annealing process was necessary to stabilize the filter against further thermally induced wavelength shifts with use in its operating environment.

The ability to accurately characterize the spectral performance is critical both as a feedback loop into the annealing processes above and to ensure that final product meets all customer specifications.  Measurement uncertainties in AOI, degree of collimation (cone angle) of interrogating beams and analyzing optics, and filter temperature while under test each contribute to the over-design margin needed to guarantee spectral compliance.  By minimizing the uncertainties in these aspects of the measurement system it was possible to minimize the over-design needed to &#;pad&#; the specs and maximize the over-design margin allowed for variability in the other manufacturing processes (annealing and coating).  Lastly to ensure that the spectral characteristics were met over the entire 125 mm clear aperture a custom-built measurement set-up providing x-y spectral mapping of the part with a fully collimated beam path (collimated launch and catch optics) was employed.

4       Conclusion

By employing and optimizing the design and manufacturing techniques described above Iridian successfully produced an environmentally stable narrow (1.72nm FWHM) band-pass filter centered to within ±10pm of the target CWL (~780nm) over a clear aperture of 125 mm in diameter.  This filter demonstrates Iridian&#;s ability to produce state-of-the-art performance large NBPF to a uniformity variation of <0.02%.

The above mentioned NBPF has been developed under a contract with Leonardo S.p.a for the Lightning Imager Instrument, in the frame of the ESA program Meteosat Third Generation (MTG), with THALES ALENIA SPACE France as prime contractor.

Narrow Bandpass Filters

Defined by 1&#; (25.4mm) diameter and 32 turns per inch pitch, C-Mount thread is a popular camera mount in machine vision industry. Schneider-Kreuznach offers for most filters a CMT mount option. So that filters can go in any C-Mount based mechanics in vision systems.

Another popular application, CMT mounts can easyly be used for, is placing a filter in front of the sensor into the camera. The extension of the back flange distance has to be considered for imaging applications.

Key features:
&#; Fits in C-Mount cameras
&#; Black Anodized Brass

Applications:
&#; To be mounted in C-Mount cameras
&#; Vision Systems based on C-Mount mechanics

Thread Diameter Clear Thickness Aperture 1'' - 32 25.4 mm 21.1 mm 3.6 mm

Schneider-Kreuznach offers a variety of mounts with common thread sizes to fit on most camera lens systems. SH-Mount is the standard, when high flexibility is needed. Filters are held by retainer rings. SH-Mounts are extreme robust.

All SH-Mounts have a female and male M-thread, and can be stacked if several filters must be combined.

Key features:
&#; Stackable
&#; &#;&#;&#;&#;&#;Robust
&#; Black Anodized Brass

Applications:
&#; Mounted on lenses in imaging applications
&#; Mounted on measurement instruments

Want more information on Narrow Bandpass Filter supplier? Feel free to contact us.

Thread Diameter Clear Thickness Aperture M 25.5x0.5 29.5 mm 20.8mm 6.4 mm M 27.0x0.5 31.0 mm 21.8 mm 6.4 mm M 35.5x0.5 39.5 mm 29.8 mm 6.4 mm M 37.0x0.75 41.0 mm 31.8 mm 6.9 mm M 39.0x0.5 43.0 mm 33.8 mm 6.4 mm M 40.5x0.5 44.5 mm 35.8 mm 6.4 mm M 43.0x0.75 47.0 mm 37.8 mm 6.9 mm M 46.0x0.75 50.0 mm 40.8 mm 6.9 mm M 49.0x0.75 53.0 mm 43.8 mm 6.9 mm M 52.0x0.75 56.0 mm 46.8 mm 6.9 mm M 55.0x0.75 59.0 mm 49.8 mm 6.9 mm M 58.0x0.75 62.0 mm 52.8 mm 6.9 mm M 62.0x0.75 66.0 mm 56.8 mm 6.9 mm M 67.0x0.75 71.0 mm 61.8 mm 6.9 mm

SN1-Mount was designed for in machine vision industry popular M30.5x0.5 thread. With its high clear aperture, vignetting can be avoided, even for wide angle applications. The filter is glued into the mount, in order to secure it against vibrations when integrated into robots or production lines. It is ideal to be used in automated fabrication.

SN1-Mounts have a male and female M-thread, and can be stacked if several filters must be combined.

Key features:
&#; Maximum Clear Aperture
&#; No vignetting
&#; Stackable
&#; Robust
&#; Black Anodized Brass

Applications:
&#; Mounted on lenses in imaging applications
&#; Mounted on measurement instruments

Thread Diameter Clear Thickness Aperture M 30.5x0.5 32 mm 28 mm 6.5 mm

Ever since the foundation in our staff have been perfecting our knowledge and technologies to bring you the best products in optics. Our manufacturing facilities in Bad Kreuznach, Germany, guarantee outstanding quality &#; Made in Germany. We continuously invest in our state-of-the-art machinery and in the education and training of our staff. Select your perfect filter from our large portfolio of optical filters. 

If you need a customized solution, we are your partner from the kick-off to the Project completion. Our extensive experience and in-depth knowledge of a wide range of applications enables us to provide you with solutions that are perfectly tailored to your needs. 

As a family owned company, we are passionate and committed to our customers and their success. You can expect long-term relationships based on trust and shared goals with us.

We design and manufacture both the mechanics and the coatings of our filters at Schneider-Kreuznach. This enables us to produce customized optical filters that meet your exact requirements and guarantee the highest quality standards.

Improve the performance and accuracy of your machines by using our optical filters. Reduce annoying reflections, minimize unwanted wavelengths, and increase the efficiency of your processes. Our filters are the key to the smooth and efficient operation of your industrial systems. They are durable and robust, ensuring long-term use. 

Contact us to find the right solution for you.

Quality and reliability are top priorities at Schneider-Kreuznach. Our filters undergo rigorous quality control to ensure maximum reliability. We use only high quality glass from reputable manufacturers to achieve very low manufacturing tolerances. As a result, our filters are of consistently high quality. Their use allows you to accurately reproduce results, as the filters will perform nearly identically even after years of use.

Our industrial optical filters are rigorously tested to DIN and ISO standards to ensure they meet stringent environmental requirements. These tests evaluate their temperature stability and ability to withstand exposure to harsh chemicals and other environmental stressors. As a result, our filters excel in demanding industrial applications, providing consistent performance and reliability over time.

We are proud of our technical expertise, which we consistently apply to the production of our lenses and optical filters through our high level of vertical integration at our Bad Kreuznach site. Each of the Schneider-Kreuznach products is manufactured with the utmost care and precision to provide you with the best possible performance and reliability.

Optics 

We demand the highest standards of materials and manufacturing processes to ensure excellent image quality, starting with the production of the optics. Our standards go beyond the production of individual components. We master the entire production process from raw glass to finished filters and are able to process all common types of glass. Our special coating technologies give the optics or lenses the desired optical properties.

Mechanics

We do mechanical manufacturing in-house. We use the latest technologies and machinery to develop robust and durable filters. With our high-end 5-axis CNC milling machines, we have world-class machining capabilities that give us exceptional precision and flexibility. These powerful milling machines allow us to realize complex geometries and sophisticated contours in the mechanical components of our filters while maintaining high reproducibility. Electroplating is performed in-house under strict environmental conditions, allowing us to customize the surface coatings of our products to meet the specific requirements of our customers.

Assembly

Our lenses are assembled in dedicated clean rooms that provide a clean and controlled environment and ensure they are free of contaminants. Our qualified staff with many years of experience and expertise perform precise adjustments and calibrate the optics to the highest quality with the lowest tolerances.

Testing and Quality Assurance

Our test technology and quality assurance reflect our high quality standards. We use state-of-the-art technologies such as interferometers and 3D coordinate measurement technology to test the lenses we manufacture to ensure they meet the highest standards. Our ISO certified processes, metrology rooms and procedures ensure consistent and reliable production to meet our customers' high expectations.

Our sales and engineering professionals provide customers with a high level of expertise and responsiveness. We understand that the needs of our industrial customers can be diverse and complex. Whether it's technical specifications, the exact application environment, special customizations, or other unique requirements, we take the time to understand each customer's unique needs and provide customized solutions.

Our advice ranges from selecting the right filter to assisting with integration into existing systems. You can count on our experts to provide the best support and find the perfect solution. Our in-depth application knowledge and proven optical expertise enable us to provide customized solutions that combine mechanical robustness, reliability and the highest imaging accuracy.

This is the result of our decades of experience with extremely tight tolerances. We even go so far as to design and build our own manufacturing and metrology systems if there is no equipment available on the market that is accurate enough. Our customers value us not only for our technical expertise, but also for the dedicated and customer-focused advice we provide. We listen. We answer questions and make recommendations. It is important to us that our customers have all the information they need so that they can make the right decisions and achieve the best possible results.

Contact us. We will be happy to advise you.

If you want to learn more, please visit our website Double Concave Lenses.

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