Claims
- 1. A method for generating long persistent phosphorescence at a selected color comprising the steps of:
a) selecting at least a first activator capable of producing long persistent phosphorescence of a first color when incorporated with optional co-activators into a host; b) selecting at least a second activator capable of producing long persistent phosphorescence of the selected color when incorporated into the host with the first activator and the optional co-activators, the second activator being capable of accepting optical energy from the first activator; c) fabricating a long-persistent phosphor comprising the second activator, the first activator and optional co-activators incorporated into the host; and d) irradiating the long-persistent phosphor, thereby producing long-persistent phosphorescence of the selected color, wherein the first activator, the second activator, and the optional co-activators are all different ions and the first color is different from the selected color.
- 2. The method of claim 1 wherein the phosphor is an alkaline-earth aluminate, an alkaline-earth silicate or an alkaline-earth aluminosilicate.
- 3. The method of claim 1 wherein the second color is green, yellow, orange or red.
- 4. The method of claim 1 wherein the second activator is selected from the group consisting of Pr3+, Nd3+, Eu3+, Tb3+, Er3+, Tm3+, Ti2+, Cr3+, Mn2+, Ni2+, Pb+, and Bi3+.
- 5. The method of claim 1 wherein the first activator is selected from the group consisting of Ce3+, Pr3+, Sm3+,Eu2+, Dy3+, and Yb3+.
- 6. A method for making a long persistent phosphor comprising the steps of:
a) combining the phosphor components according to the stoichiometry of the formula: v(MO)·(x/2)(Al2O3).y(SiO2):dD, cC, aA where M is an alkaline-earth metal, D is a donor ion, C is a co activator ion, A is an acceptor ion, v>0, x≧0, y≧0, x+y>0, 0<d≦10%, 0≦c≦10% and 0<a≦10% and; and b) sintering the phosphor components in a reducing atmosphere.
- 7. The method of claim 6 wherein a flux is combined with the phosphor components in step (a).
- 8. The method of claim 6 wherein the flux is B2O3, H3BO3, or hydrates thereof.
- 9. The method of claim 6 additionally comprising the steps of grinding the sintered phosphor components and re-sintering the ground phosphor components in a reducing atmosphere.
- 10. The method of claim 6 additionally comprising the step of growing single crystals from the sintered phosphor components under a reducing atmosphere, whereby the phosphor is a single crystal phosphor.
- 11. The method of claim 6 wherein D is selected from the group consisting of Ce3+, Pr3+, Sm3+,Eu2+, Dy3+, and Yb3+ and A is selected from the group consisting of Pr3+, Nd3+, Eu3+, Tb3+, Er3+, Tm3+, Ti2+, Cr3+, Mn2+, Ni2+, Pb+, and Bi3+.
- 12. The method of claim 6 wherein v is 1, x is 2, and y is 0.
- 13. The method of claim 6, wherein v is 2, x is 2, and y is 1.
- 14. The method of claim 6 wherein v is 1, x is 0 and y is 1.
- 15. A long persistent phosphor comprising a host, a donor ion, optional co-activators, and an acceptor ion, wherein the donor ion is capable of transfer of optical energy to the acceptor ion, the phosphor emits light largely characteristic of the acceptor ion and the first activator, the second activator, and the optional co-activators are all different ions.
- 16. The phosphor of claim 15 wherein the host is an alkaline-earth metal aluminate, an alkaline-earth metal silicate, or an alkaline-earth metal aluminosilicate.
- 17. The phosphor of claim 15 wherein the donor ion is selected from the group consisting of Ce3+, Pr3+, Sm3+,Eu2l, Dy3+, and Yb3+.
- 18. The phosphor of claim 15 wherein the acceptor ion is selected from the group consisting of Pr3+, Nd3+, Eu3+,Tb3+, Er3+, Tm3+, Ti2+, Cr3+, Mn2+, Ni2+, Pb+, and Bi3+.
- 19. A long persistent phosphor represented by the formula:
- 20. The phosphor of claim 19, wherein M is selected from the group consisting of Mg, Ca, Sr, and Ba.
- 21. The phosphor of claim 19, wherein 0.5%<d≦2%, and 0.5<a≦2% and 0≦c≦5%.
- 22. The phosphor of claim 19 wherein the phosphor is a powder.
- 23. The phosphor of claim 19 wherein the phosphor is a ceramic body.
- 24. The phosphor of claim 19 wherein the phosphor is a single crystal.
- 25. The phosphor of claim 19 wherein v is 1, x is 2, y is 0, and z is 4.
- 26. The phosphor of claim 25 wherein D is selected from the group consisting of Ce3+, Pr3+, Sm3+,Eu2+, Dy3+, and Yb3+ and A is selected from the group consisting of Pr3+, Nd3+, Eu3+, Tb3+, Er3+, Tm3+, Ti2+, Cr3+, Mn2+, Ni2+, Pb+, and Bi3+.
- 27. The phosphor of claim 26 wherein D is Ce3+ and A is Mn2+.
- 28. The phosphor of claim 19 wherein v is 2, x is 2, y is 1, and z is 7.
- 29. The phosphor of claim 28 wherein D is selected from the group consisting of Ce3+, Pr3+, Sm3+,Eu2+, Dy3+, and Yb3+ and A is selected from the group consisting of Pr3+, Nd3+, Eu3+, Tb3+, Er3+, Tm3+, Ti2+, Cr3+, Mn2+, Ni2+, Pb+, and Bi3+.
- 30. The phosphor of claim 29 wherein D is Ce3+ and A is Mn2+.
- 31. The phosphor of claim 19 wherein v is 1, x is 0, y is 1, and z is 3.
- 32. The phosphor of claim 31 wherein D is selected from the group consisting of Ce3+, Pr3+, Sm3+,Eu2+, Dy3+, and Yb3+ and A is selected from the group consisting of Pr3+, Nd3+, Eu3+, Tb3+, Er3+, Tm3+, Ti2+, Cr3+, Mn2+, Ni2+, Pb+, and Bi3+.
- 33. The phosphor of claim 32 wherein D is Eu2+, A is Mn2+ and C is Dy3+.
- 34. The phosphor of claim 33 wherein M is Mg.
- 35. A long persistent phosphor represented by the formula
- 36. The phosphor of claim 35, wherein M is selected from the group consisting of Mg, Ca, Sr, and Ba.
- 37. The phosphor of claim 35, wherein v is 1, x is 2, y is 0, and z is 4.
- 38. The phosphor of claim 35, wherein v is 2, x is 2, y is 1 and z is 7.
- 39. A long persistent phosphor represented by the formula:
- 40. The phosphor of claim 39 wherein M is magnesium.
- 41. A phosphorescent article comprising the phosphor of claim 15 embedded in a matrix which does not substantially react with the phosphor.
- 42. A method for generating long persistent phosphorescence comprising the steps of:
a) providing a phosphor of claim 15; and b) irradiating the phosphor such that long persistent phosphorescence is produced.
ACKNOWLEDGEMENT OF GOVERNMENT SUPPORT
[0001] This invention was made at least in part with U.S. government funding through Grant DMR 9986693 from the National Science Foundation. The United States government has certain rights in this invention.