IPC분류정보
국가/구분 |
United States(US) Patent
등록
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국제특허분류(IPC7판) |
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출원번호 |
UP-0335813
(2006-01-18)
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등록번호 |
US-7791561
(2010-09-27)
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발명자
/ 주소 |
- Hajjar, Roger A.
- Kent, David
- Malyak, Phillip H.
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출원인 / 주소 |
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대리인 / 주소 |
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인용정보 |
피인용 횟수 :
16 인용 특허 :
130 |
초록
▼
Fluorescent screens and display systems and devices based on such screens using at least one excitation optical beam to excite one or more fluorescent materials on a screen which emit light to form images. The fluorescent materials may include phosphor materials and non-phosphor materials such as qu
Fluorescent screens and display systems and devices based on such screens using at least one excitation optical beam to excite one or more fluorescent materials on a screen which emit light to form images. The fluorescent materials may include phosphor materials and non-phosphor materials such as quantum dots. A screen may include a multi-layer dichroic layer.
대표청구항
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What is claimed is: 1. A display system, comprising: a screen comprising a substrate on which a plurality of parallel fluorescent stripes are formed, wherein adjacent fluorescent stripes are made of different fluorescent materials that absorb light at an excitation wavelength to emit light of diffe
What is claimed is: 1. A display system, comprising: a screen comprising a substrate on which a plurality of parallel fluorescent stripes are formed, wherein adjacent fluorescent stripes are made of different fluorescent materials that absorb light at an excitation wavelength to emit light of different colors, respectively; and an optical module to project and scan one or more excitation optical beams at the excitation wavelength onto the screen to convert an image carried by the one or more excitation optical beams via an optical modulation into an image produced by emitted light from the parallel fluorescent stripes on the screen, wherein the optical module comprises a modulation control which controls the optical modulation of each excitation optical beam to produce image grey scales, wherein the optical module comprises: a mechanism to monitor image data bits to be modulated on an excitation optical beam to produce a black pixel monitor signal that indicates black pixels in image data bits; at least a diode laser to produce a laser beam as the excitation optical beam; and a laser control coupled to receive the black pixel monitor signal and to operate the diode laser at a driving current below a laser threshold current without turning off the driving current to produce a low light output representing a black color on the screen when the black pixel monitor signal indicates a length of black pixels is less than a response delay time of the diode laser and turn off the driving current to produce a true black color on the screen when the black pixel monitor signal indicates a length of black pixels is greater than the response delay time of the diode laser. 2. A system as in claim 1, wherein the fluorescent materials comprise quantum dots. 3. A system as in claim 1, wherein the fluorescent materials comprise phosphor materials. 4. A system as in claim 1, wherein the modulation control in the optical module divides a scanning time duration for scanning the excitation optical beam across one fluorescent stripe into time slots and controls a number of the time slots during which optical power of the excitation optical beam is turned on for the pulse width modulation. 5. A system as in claim 1, wherein the modulation control in the optical module controls, for the pulse width modulation, a duration for turning on optical power of the excitation optical beam within a scanning time duration for scanning the excitation optical beam across one fluorescent stripe. 6. A system as in claim 1, wherein the modulation control in the optical module controls, for the pulse code modulation, an optical power level of the excitation optical beam to be at digitalized levels. 7. A system as in claim 1, wherein the optical module comprises a beam scanning module that receives the excitation beam from the diode laser and scans the excitation beam onto the screen. 8. A system as in claim 7, wherein the beam scanning module includes a polygon scanner to scan the excitation beam across the fluorescent stripes and a second scanner to scan the excitation beam along the fluorescent stripes. 9. A system as in claim 1, wherein the optical module comprises: a plurality of diode lasers to produce laser beams at the excitation wavelength that collectively constitute the excitation beam; and a signal modulation controller that controls and modulates the diode lasers, respectively, to cause an optical modulation of the laser beams of the excitation beam for carrying an image to be displayed on the screen, wherein the modulation control is part of the signal modulation controller. 10. A system as in claim 9, wherein the optical module comprises a beam scanning module that receives the laser beams of the excitation beam from the laser and scans the laser beams of the excitation beam onto the screen. 11. A system as in claim 10, wherein the beam scanning module includes a polygon scanner to scan the laser beams of the excitation beam across the fluorescent stripes and a second scanner to scan the laser beams of the excitation beam along the fluorescent stripes. 12. A system as in claim 1, wherein the fluorescent materials comprise nanoscale phosphor grains. 13. A system as in claim 1, wherein the fluorescent materials comprise one of Ba2MgSi207:Eu2+; Ba2SiO4:Eu2+; and (Sr,Ca,Ba)(Al,Ga)2S4:Eu2+. 14. A system as in claim 1, wherein the fluorescent materials comprise SrxBayCazSiO4:Eu2+ in which x, y, and z are between and including 0 and 2. 15. A system as in claim 1, wherein the fluorescent materials comprise one of SrS:Eu2+; CaS:Eu2+; CaS:Eu2+,Mn2+; (Zn,Cd)S:Ag2+; Mg4GeO5.5F:Mn4+; Y2O2S:Eu2+,ZnS:Mn2+,SrGa2S4:Eu2+; ZnS:Cu,Al; BaMg2Al16O27:Eu2+,Mg; and (Y,Gd)3Al5O12:Ce,Pr. 16. A system as in claim 1, wherein the fluorescent materials comprise one of YBO3:Ce3+,Tb3+; BaMgAl10O17:Eu2+,Mn2+; (Sr,Ca,Ba)(Al,Ga)2S4:Eu2+; Y3Al5O12:Ce3+; Y2O2S:Eu3+,Bi3+; YVO4:E3+,Bi3+; SrS:Eu2+; SrY2S4:Eu2+; SrS:Eu2+,Ce3+,K+; (Ca,Sr)S:Eu2+; and CaLa2S4:Ce3+. 17. A system as in claim 1, wherein the fluorescent materials comprise BaMg2Al16O27:Eu2+(BAM). 18. A system as in claim 1, wherein the fluorescent materials comprise (Sr,Ba,Ca,Mg)5(PO4)3Cl:Eu2+. 19. A system as in claim 1, wherein the fluorescent materials comprise MIIX2.aMIIX′2.bSiO:xEu2+, where MII is at least one alkaline earth metal selected from the group consisting of Ba, Sr and Ca; each of X and X′ is at least one halogen selected from the group consisting of Cl, Br and I, and X is different from X′; a, b and x are positive numbers. 20. A system as in claim 1, comprising a dichroic layer on a first side of the fluorescent materials to transmit light at the excitation wavelength and to reflect light emitted by the fluorescent materials, the dichroic layer comprising a composite film stack of multiple polymer films that are coextruded to have alternating high and low refractive indices to form an optical interference filter. 21. A system as in claim 1, comprising a dichroic layer on a first side of the fluorescent materials to transmit light at the excitation wavelength and to reflect light emitted by the fluorescent materials, wherein the dichroic layer comprises a stack of films which have different refractive indices between two adjacent films and are laminated or fused with one another. 22. A system as in claim 1, comprising a Fresnel lens located on the first side of the fluorescent materials to direct the excitation beam scanned by the optical module at different incident angles at different locations on the screen to be approximately normal to the screen. 23. A system as in claim 1, comprising: one or more optical sensors to detect light from the screen; and a feedback control loop that directs output of the one or more optical sensors to the optical module as a feedback signal, wherein the optical module responds to the feedback signal to detect an alignment error of the excitation beam on the screen, and, in response to the detected alignment error, the optical module operates to control the excitation beam to correct the detected alignment error. 24. A system as in claim 1, comprising: optical sensors positioned to receive and detect light emitted by the fluorescent materials, each optical sensor being responsive to light of only one of the colors emitted by the fluorescent materials on the screen to produce a response, and different optical sensors being responsive to light of different colors, respectively, to produce respective responses; and a feedback loop that directs outputs of the optical sensors to the optical module as a feedback signal, wherein the optical module responds to the feedback signal to detect an alignment error of the excitation beam along a direction perpendicular to the fluorescent stripes, and, in response to the detected alignment error, the optical module operates to control the excitation beam to correct the detected alignment error. 25. A system as in claim 1, comprising: means for shaping the excitation beam with a beam cross section that is elongated along the parallel fluorescent stripes. 26. The system as in claim 1, wherein the laser control, after turning off the driving current to produce a true black color on the screen when the black pixel monitor signal indicates a display time of a block of contiguous black pixels is greater than the response delay time of the diode laser and before the end of displaying the block of the contiguous black pixels, turns on the driving current of the diode laser to a value below the laser threshold current to produce the virtue black color for the remaining part of the block of the contiguous black pixels. 27. The system as in claim 1, comprising: an optical sensor module positioned to receive and detect colored light emitted from the fluorescent stripes as a result of absorbing light at the excitation wavelength; and a feedback control that responds to an electrical output of the optical sensor unit to obtain alignment information containing in the electrical output of the optical sensor module, and controls at least one of a timing of image data modulated on the laser beam and a direction of the laser beam projected onto the screen to correct an alignment of the laser beam with respect to the fluorescent stripes. 28. A method for displaying images, comprising: producing excitation light from a diode laser at an excitation wavelength that optically excites fluorescent materials to cause the fluorescent materials to emit colored light; applying both a pulse code modulation and a pulse width modulation to modulate a beam of the excitation light to carry images with image grey scales in form of sequential optical pulses in the beam of the excitation light that carry image data of an image in different colors; scanning the modulated beam of the excitation light onto a screen comprising a substrate on which a plurality of parallel fluorescent stripes are formed from the fluorescent materials to produce images on the screen with the emitted colored light, wherein at least three adjacent fluorescent stripes are made of three different fluorescent materials: a first fluorescent material to absorb light at an excitation wavelength to emit light of a first color, a second fluorescent material to absorb light at the excitation wavelength to emit light of a second color, and a third fluorescent material to absorb light at the excitation wavelength to emit light of a third color; monitoring image data bits to be modulated on the excitation light to produce a black pixel monitor signal that indicates black pixels in image data bits; in response to the black pixel monitor signal, operating the diode laser at a driving current below a laser threshold current without turning off the driving current to produce a low light output representing a black color on the screen when the black pixel monitor signal indicates a length of black pixels is less than a response delay time of the diode laser; and in response to the black pixel monitor signal, operating the diode laser to turn off the driving current to produce a true black color on the screen when the black pixel monitor signal indicates a length of black pixels is greater than the response delay time of the diode laser. 29. A method as in claim 28, comprising: operating a plurality of diode lasers to produce laser beams of the excitation light at the excitation wavelength onto the screen; and controlling an electric current that is supplied to each diode laser to cause the pulse code modulation and the pulse width modulation to be made on the excitation light of a respective laser beam produced by the diode laser to carry images with image grey scales.
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