Claims
- 1. A boron-containing phosphor comprising a material having a formula of AD1-xEuxB9O16, wherein A is an element selected from the group consisting of Ba, Sr, Ca, Mg, and combinations thereof; D is at least a rare-earth metal selected from the group consisting of Y, Ce, Pr, Nd, Sm,Gd, Tb, Dy, Ho, Er, Tm, Yb, and Lu; and x is in the range from about 0.005 to about 0.5.
- 2. The boron-containing phosphor according to claim 1, wherein D is at least a rare-earth metal selected from the group consisting of Y, Ce, Pr, Sm, La, Gd, Tb, and Lu.
- 3. The boron-containing phosphor according to claim 1, wherein D is at least a rare-earth metal selected from the group consisting of Gd, Y, Sm, La, and Lu.
- 4. The boron-containing phosphor according to claim 1, the phosphor being capable of absorbing ultraviolet (“UV”) radiation having wavelengths in a range from about 200 nm to about 400 nm.
- 5. The boron-containing phosphor according to claim 4, wherein the phosphor emits in a wavelength range from about 600 nm to about 700 nm.
- 6. The boron-containing phosphor according to claim 5, wherein a greatest portion of emitted light has wavelengths in a range from about 600 nm to about 625 nm.
- 7. The boron-containing phosphor according to claim 1, wherein x is in a range from about 0.005 to about 0.3.
- 8. The boron-containing phosphor according to claim 1, wherein A is Ba, and D is Gd.
- 9. The boron-containing phosphor according to claim 8, wherein x is in a range from about 0.005 to about 0.3.
- 10. A boron-containing phosphor having a formula of BaGd0.7Eu0.3B9O16.
- 11. A phosphor blend comprising: (a) a boron-containing, red light-emitting phosphor having a formula of AD1-xEuxB9O16, wherein A is an element selected from the group consisting of Ba, Sr, Ca, Mg, and combinations thereof; D is at least a rare-earth metal other than europium; and x is in the range from about 0.005 to about 0.5; (b) a green light-emitting phosphor; and (c) a blue light-emitting phosphor.
- 12. The phosphor blend according to claim 11, wherein D is selected from the group consisting of Y, Ce, Pr, Sm, La, Gd, Tb, Lu, and combinations thereof.
- 13. The phosphor blend according to claim 11, wherein D is selected from the group consisting of Gd, Y, Sm, La, Lu, and combinations thereof.
- 14. The phosphor blend according to claim 13, wherein the green light-emitting phosphor emits light having a peak emission in a range from about 500 nm to about 560 nm, and the blue light-emitting phosphor emits light having a peak emission in a range from about 420 nm to about 500 nm.
- 15. The phosphor blend according to claim 13, wherein A is Ba, and D is Gd.
- 16. The phosphor blend according to claim 13, wherein x is in a range from about 0.005 to about 0.3.
- 17. The phosphor blend according to claim 13, wherein the green light-emitting phosphor is selected from the group consisting of LaPO4:Ce3+,Tb3+; GdMgB5O10:Ce3+,Tb3+, CeMgAl11O19:Ce3+,Tb3+; Ca5(PO4)3(Cl,F,OH):Sb3+,Mn2+,Eu2+; Sr4Al14O25:Eu2+; BaAl8O13:Eu2+; and combinations thereof.
- 18. The phosphor blend according to claim 13, wherein the blue light-emitting phosphor is selected from the group consisting of BaMgAl10O17:Eu2+,Mn2+; Sr5(PO4)3(Cl,F,OH):Eu2+; and combinations thereof.
- 19. A phosphor blend comprising LaPO4:Ce3+,Tb3+; Sr5(PO4)3(Cl,F,OH):Eu2+; Sr4Al14O25:Eu2+; and BaGd0.7Eu0.3B9O16.
- 20. A method for making a boron-containing phosphor, the method comprising:
(a) mixing an amount of at least an oxygen-containing compound of at least a first element selected from the group consisting of Ba, Sr, Ca, Mg, and combinations thereof; an amount of at least an oxygen-containing compound of at least a second element selected from the group consisting of rare-earth metals other than europium; an amount of at least an oxygen-containing compound of europium; and an amount at least an oxygen-compound of boron to form a mixture; and (b) heating the mixture in an oxygen-containing atmosphere at a temperature in a range from about 900 C to about 1400 C for a time sufficient to convert the mixture to the boron-containing phosphor; wherein the amounts of the oxygen-containing compounds of the first element, the second element, europium, and boron are selected such that the boron-containing phosphor has a formula of AD1-xEuxB9O16, wherein A is an element selected from the group consisting of Ba, Sr, Ca, Mg, and combinations thereof; D is at least an element selected from the group consisting of rare-earth metals other than europium; and x is in the range from about 0.005 to about 0.5.
- 21. The method according to claim 20, wherein the oxygen-containing compounds are selected from the group consisting of oxides, carbonates, nitrates, sulfates, phosphates, citrates, carboxylates, and combinations thereof.
- 22. The method according to claim 20, wherein a flux compound is added to the mixture, the flux compound is selected from the group consisting of borates, and fluorides of at least one element selected from the group consisting of Ba, Sr, Ca, Mg, Ga, Y, Sm, La, and Lu.
- 23. The method according to claim 20, wherein the at least a first element is Ba, the at least a second element is Gd, and the heating is conducted at a temperature in a range from about 900 C to about 1200 C.
- 24. The method according to claim 23, wherein the heating is conducted for a time in a range from about 1 minute to about 10 hours.
- 25. A method for making a boron-containing phosphor, the method comprising:
(a) mixing amounts of barium carbonate, gadolinium oxide, europium oxide, boric acid, and lithium tetraborate to form a mixture; and (b) heating the mixture in air at a temperature of about 950 C for a time of about 5 hours to convert the mixture to the boron-containing phosphor; wherein the amounts of barium carbonate, gadolinium oxide, europium oxide, and boric acid are selected such that the boron-containing phosphor has a formula of BaGd0.7Eu0.3B9O16.
- 26. A method for making a boron-containing phosphor, the method comprising:
(a) providing a first solution that comprises:
(1) at least a compound of at least a first element selected from the group consisting of Ba, Sr, Ca, Mg, and combinations thereof; (2) at least a compound of at least a second element selected from the group consisting of rare-earth metals other than europium; (3) at least a compound of europium; and (4) at least a compound of boron; (b) adding a second solution to the first solution to produce a precipitate comprising compounds of the first element, the second element, europium, and boron; the second solution comprising a base selected from the group consisting of ammonium hydroxide; hydroxides of at least one element selected from the group consisting of Ba, Sr, Ca, Mg, Gd, said at least a second element, and combinations thereof; organic esters of carboxylic acids; organic amines; and combinations thereof; and (c) heating the precipitate in an oxygen-containing atmosphere at a temperature in a range from about 900 C to about 1400 C for a time sufficient to convert the precipitate to the boron-containing phosphor having a formula of AD1-xEuxB9O16, wherein A is the at least a first element; D is the at least a second element; and x is in a range from about 0.005 to about 0.5.
- 27. The method according to claim 26, wherein the at least a compound of the first element, the at least a compound of the second element, the compound of europium, and the compound of boron comprise oxygen-containing compounds.
- 28. The method according to claim 27, wherein the oxygen-containing compounds are dissolved in an acidic solution to form the first solution.
- 29. The method according to claim 26, wherein the organic esters are selected from the group consisting of methyl, ethyl, propyl esters of acetic acid, propionic acid, butyric acid, oxalic acid, malonic acid, succinic acid, and glutaric acid.
- 30. The method according to claim 26, wherein the organic amines are selected from the group consisting of methanolamine, ethanolamine, propanolamine, dimethanolamine, diethanolamine, dipropanolamine, trimethanolamine, triethanolamine, and tripropanolamine.
- 31. The method according to claim 26, wherein the heating temperature is in a range from about 900 C to about 1200 C.
- 32. The method according to claim 26, wherein the heating is carried out for a time in a range from about 1 minute to about 10 hours.
- 33. A light source comprising:
(a) a means for generating UV radiation, which means is located in a sealed housing; and (b) a phosphor disposed within the sealed housing and adapted to be excited by the UV radiation and to emit visible light, wherein the phosphor comprises a material having a formula of AD1-xEuxB9O16, wherein A is an element selected from the group consisting of Ba, Sr, Ca, Mg, and combinations thereof; D is at least an element selected from the group consisting of rare-earth metals other than europium; and x is in the range from about 0.005 to about 0.5.
- 34. The light source according to claim 33, wherein the UV radiation has wavelengths in a range from about 200 nm to about 400 nm, and the phosphor emits in a wavelength range from about 600 nm to about 700 nm.
- 35. The light source according to claim 34, wherein a greatest portion of light emitted by the phosphor has wavelengths in a range from about 600 nm to 625 nm.
- 36. The light source according to claim 33, wherein the means for generating UV radiation comprises a means for generating electrons, and a means for absorbing energy of the electrons to emit UV radiation.
- 37. The light source according to claim 36, wherein the means for absorbing energy of the electrons comprises a mercury vapor.
- 38. The light source according to claim 36, wherein the means for generating UV radiation comprises a filament of a metal having a work function less than about 4.5 eV.
- 39. The light source according to claim 33, wherein the phosphor is a component of a phosphor blend that comprises at least a green light-emitting phosphor and at least a blue light-emitting phosphor.
- 40. The light source according to claim 39, wherein the at least a green light-emitting phosphor is selected from the group consisting of LaPO4:Ce3+,Tb3+; GdMgB5O10:Ce3+,Tb3+, CeMgAl11O19:Ce3+,Tb3+; Ca5(PO4)3(Cl,F,OH):Sb3+,Mn2+, Eu2+; Sr4Al14O25:Eu2+; BaAl8O13:Eu2+; and combinations thereof.
- 41. The light source according to claim 39, wherein the at least a blue light-emitting phosphor is selected from the group consisting of BaMgAl10O17:Eu2+,Mn2+; Sr5(PO4)3(Cl,F,OH):Eu2+; and combinations thereof.
- 42. The light source according to claim 33, having a CRI in a range from about 80 to about 100.
- 43. The light source according to claim 33, having a CCT in a range from about 2500 K to about 10000 K.
- 44. A light source comprising:
(a) a source of UV radiation disposed in sealed housing, the UV source comprising a mercury vapor that is capable of absorbing energy of electron to create a mercury vapor discharge; and (b) a phosphor blend disposed on an inner surface of the sealed housing, the phosphor blend comprises a first phosphor having a formula of LaPO4:Ce3+,Tb3+; a second phosphor having a formula of Sr4(PO4)3(Cl,F,OH):Eu2+, a third phosphor having a formula of Sr4Al14O25:Eu2+, and a fourth phosphor having a formula of BaGd0.7Eu0.3B9O16; the phosphor blend absorbing UV radiation from the source of UV radiation and emitting light in a visible range.
- 45. A cathode ray tube display comprising a source of electrons, and a phosphor disposed on a surface opposite to the source of electrons, wherein the phosphor has a formula of AD1-xEuxB9O16, wherein A is an element selected from the group consisting of Ba, Sr, Ca, Mg, and combinations thereof; D is at least an element selected from the group consisting of rare-earth metals other than europium; and x is in the range from about 0.005 to about 0.5; and wherein the phosphor is bombarded by the electrons and emits light in visible spectral region.
Government Interests
[0001] This invention was first conceived or reduced to practice in the performance of work under contract DE-FC26-99FT40632 awarded by the United States Department of Energy. The United States of America may have certain rights to this invention.