Background of the Invention
The present invention relates to light filters and more particularly to a solar blind ultraviolet (UV) filter.
Solar blind UV filters provide a sharp attentuation in a short spectrum period to give a black background for the event being viewed and eventually detected and is employed to improve the performance of light detectors having unsuitable operating characteristics.
Solar blind UV filters in the prior art use a combination of doped glasses, crystals and thin films to achieve transmission in the 0.25 to 0.285 micron region. These prior art devices have low peak transmission in the band of interest and out-of-band light leaks which required the use of multilayer dielectric films to correct. The use of these films degraded the off axis performance of the filters.
Summary of the Invention
An object of the present invention is to provide a solar blind UV filter which overcomes the disadvantages of the prior art solar blind UV filters.
Another object of the present invention is to provide a solar blind UV filter having increased transmission in the region of interest and a sharper defined band edge around 0.28 microns.
Still another object of the present invention is to provide an improved solar blind UV filter having increased transmission in the region of interest, a sharper defined band edge about 0.28 microns and which eliminates the previous light leak problems.
A feature of the present invention is the provision of a solar blind UV filter comprising: a cell containing a selected gas disposed coaxial of a longitudinal axis to receive light energy through an input face thereof; a filter element disposed coaxial of the axis and secured to an output face of the cell; a unit containing a crystal material disposed coaxial of the axis and secured to an output face of the filter element, the unit having an output face to provide an ultraviolet energy output for the solar blind filter; and a metallic shell disposed coaxial of the axis to enclose the peripheral surface of the cell, the element and the unit.
The solar blind UV filter disclosed herein uses some of the existing filter elements in combination with new elements to provide increased transmission in the region of interest, a sharper defined band edge about 0.28 microns and eliminates the previously described light leak problems.
Brief Description of the Drawing
The above-mentioned and other features and objects of the present invention and the manner of obtaining them will become more apparent by reference to the following description taken in conjuction with the drawing, the single FIGURE of which is a longitudinal cross sectional view of a solar blind UV filter in accordance with the principles of the present invention.
Description of the Preferred Embodiment
Referring to the FIGURE, the solar blind UV filter of the present invention is illustrated as including in an intimate cascade relationship, a UV grade quartz cell 1 containing chlorine gas at a pressure of 1.5 atmospheres having an input face to receive light energy, a filter element 2 secured to an output face of cell 1, and a unit 3 containing a nickel sulphate hexahydrate (NiSO.sub.4 :6H.sub.2 O) crystal. Chlorine gas is known to absorb light energy in the 3400 to 3800 .ANG. region and the NiSO.sub.4 :6H.sub.2 O crystal is known to absorb light energy in the 4500 to 6700 .ANG. region. Unit 3 has an output face 4 to provide a UV energy output for the solar blind filter. Enclosing cell 1, element 2 and unit 3 on the peripheral surface thereof is a metallic shell 5, such as, a black anodized aluminum shell.
In the filter assembly, special precautions are taken to mask the cylindrical walls of cell 1, element 2 and unit 3 and, in particular, cell 1, so that a light pipe effect will not occur. If light piping did occur, solar radiation could bypass filter element 2 and result in an increased solar background count.
Filter element 2 includes a first glass disc 6, a second glass disc 7 spaced along the longitudinal axis from disc 6 and a third glass disc 8 spaced along the longitudinal axis from disc 7. A cavity 9 is formed between discs 6 and 7 and contains therein a filter material, preferably potassium iodide which is doped with thallium (KI:T1) known to have a sharp cut off light energy filter characteristic in the 2790 to 3010 .ANG. range, such as at 2968 .ANG.. Between glass discs 7 and 8 there is formed a cavity 10 in which a filter fluid, preferably Cation X-glycerol solution, is confined. Cation X is obtainable from Eastman Kodak. Cation X has a concentration of 0.5 grams per liter of glycerol. Cation X is designated 2,3-dihydro-5,7-dimethyl-1H-1,4-diazepine perchlorate whose chemical formula is C.sub.7 H.sub.13 ClN.sub.2 O.sub.4 and is known to absorb light energy in the 3000 to 3400 .ANG. region. Cavities 9 and 10 are epoxy-sealed cavities and glass discs 6-8 are made from Jena UG5 glass known to absorb light energy in the 3600 to 4500 .ANG. region. The Jena UG5 glass is made by and available from Jenaer Glaswerk Schott & Gen., Mainz, West Germany.
Unit 3 includes another epoxy-sealed cell containing the NiSO.sub.4 :6H.sub.2 O crystal of 1 cm length. This cell includes the output face of disc 8 and a UV grade quartz disc 11 providing the output face 4 of the filter assembly.
In order to minimize the reflection losses at the various interface surfaces, such as the interface surface between cell 1 and disc 6, the interface surface between disc 6 and the thallium doped potassium iodide, the interface surface between the thallium doped potassium iodide and disc 7, the interface surface between disc 7 and the Cation X-glycerol solution, the interface surface between the Cation X-glycerol solution and disc 8, the interface surface between disc 8 and nickel sulphate hexahydrate crystal, and the interface between the crystal material and disc 11, a second fluid DC200, was introduced as an interface coupling medium. DC200 is dimethyl polysiloxane made by Dow Corning and is a stable polymer which has been found to be non-contaminating and non-adulterating in food processing. DC200 is a fluid of extremely high viscosity (300,000 centistrokes) and, therefore, does not require any special containment provisions except for shell 5.
While we have described above the principles of our invention in connection with specific apparatus, it is to be clearly understood that this description is made only by way of example and not as a limitation to the scope of our invention as set forth in the objects thereof and in the accompanying claims.