Computed radiography imaging plates and associated methods of manufacture
Computed radiography imaging plates incorporating an intensifying material that is coupled to or intermixed with the phosphor layer, allowing electrons and/or low energy x-rays to impart their energy on the phosphor layer, while decreasing internal scattering and increasing resolution. The radiation needed to perform radiography can also be reduced as a result.
1. An imaging plate for use in radiography applications, comprising:
a phosphor layer;
a metallic or metallic compound intensifying layer coupled to the phosphor layer; and
a visible light barrier disposed between the phosphor layer and the metallic or metallic compound intensifying layer;
wherein the metallic or metallic compound intensifying layer is coupled to a side of the phosphor layer that is configured to be disposed proximate to an object to be imaged when the imaging plate is in use.
2. The imaging plate of claim 1 , wherein the visible light barrier comprises one of a reflective layer or an anti-reflective layer disposed between the phosphor layer and the metallic or metallic compound intensifying layer.
3. The imaging plate of claim 1 , further comprising a clear protective layer coupled to the phosphor layer opposite the metallic or metallic compound intensifying layer.
4. The imaging plate of claim 1 , further comprising a structural support layer.
5. The imaging plate of claim 1 , further comprising one or more binding layers.
6. The imaging plate of claim 1 , wherein the metallic or metallic compound intensifying layer primarily comprises a metal.
7. The imaging plate of claim 6 , wherein the metallic or metallic compound intensifying layer comprises one or more of lead, copper, tungsten, tantalum, steel, stainless steel, brass, aluminum, nickel, cobalt, silver, gold, platinum, osmium, ruthenium, niobium, hafnium, zinc, cadmium, bismuth, tin, iridium, molybdenum, manganese, titanium, vanadium, scandium, thorium, and uranium.
8. An imaging plate for use in radiography applications, comprising:
a phosphor layer;
a plurality of metallic or metallic compound intensifying particles disposed one or more of on a surface of and within an interior portion of the phosphor layer; and
a visible light barrier disposed between the phosphor layer and the plurality of metallic or metallic compound intensifying particles;
wherein the plurality of metallic or metallic compound intensifying particles are disposed at least partially between the phosphor layer and an object to be imaged when the imaging plate is in use.
9. The imaging plate of claim 8 , wherein the visible light barrier comprises one of a reflective layer or an anti-reflective layer disposed between the phosphor layer and the metallic or metallic compound intensifying particles.
10. The imaging plate of claim 8 , further comprising a clear protective layer coupled to the phosphor layer opposite the metallic or metallic compound intensifying particles.
11. The imaging plate of claim 8 , further comprising a structural support layer.
12. The imaging plate of claim 8 , further comprising one or more binding layers.
13. The imaging plate of claim 8 , wherein the metallic or metallic compound intensifying particles primarily comprise a metal.
14. The imaging plate of claim 13 , wherein the metallic or metallic compound intensifying particles comprise one or more of lead, copper, tungsten, tantalum, steel, stainless steel, brass, aluminum, nickel, cobalt, silver, gold, platinum, osmium, ruthenium, niobium, hafnium, zinc, cadmium, bismuth, tin, iridium, molybdenum, manganese, titanium, vanadium, scandium, thorium, and uranium.
15. The imaging plate of claim 8 , wherein the phosphor layer is one of coated and doped with the metallic or metallic compound intensifying particles.