1. Field of the Invention
The present invention relates to an image generating device, and more particularly, to an image generating device utilizing quantum dots for improving illumination efficiency.
2. Description of the Prior Art
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However, according to the above arrangement, when one solid-state light source generates light, the other two solid-state light sources need to be turned off, such that the turned off solid-state light sources are not able to be utilized for generating images. Therefore, the solid-state light sources of the projector of the prior art are not utilized efficiently.
The present invention provides an image generating device with improved illumination efficiency. The image generating device comprises a first light source, a light conversion element, and an image generating element. The first light source is for generating light with a first wavelength. The light conversion element is disposed on a light path of the light with the first wavelength. The light conversion element comprises a first quantum dot layer for converting light with wavelengths under a second wavelength to light with the second wavelength, and a second quantum dot layer for converting light with wavelengths under a third wavelength to light with the third wavelength. The first wavelength is smaller than the second wavelength, and the second wavelength is smaller than the third wavelength. The image generating element is for generating images according to light transmitted from the light conversion element.
The present invention further comprises another image generating device with improved illumination efficiency. The image generating device comprises a first light source, a second light source, a light conversion element, and an image generating element. The first light source is for generating light with a first wavelength. The second light source is for generating light with a second wavelength. The light conversion element is disposed on a light path of the light with the first wavelength and/or the second wavelength. The light conversion element comprises a first quantum dot layer for converting light with wavelengths under a third wavelength to light with the third wavelength. The first wavelength and/or the second wavelength are smaller than the third wavelength. The image generating element is for generating images according to light transmitted from the light conversion element.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
The quantum dot is a nanoscale semiconductor material, which can be an element of semiconductor material (such as Si, Ge), or a compound of semiconductor material (such as CdSe or CdS). A particle diameter of the quantum dot is less than 100 nanometers. The quantum dot can absorb light with wavelengths below a predetermined wavelength according to the particle size, and convert the light with wavelengths below the predetermined wavelength to light with the predetermined wavelength. For example, when the particle diameter of a CdSe quantum dot is 2.1 nanometers, the CdSe quantum dot absorbs light with wavelengths below a blue light wavelength, and converts the light with wavelengths below the blue light wavelength to the blue light. When the particle diameter of the CdSe quantum dot is 5 nanometers, the CdSe quantum dot absorbs light with wavelengths below a green light wavelength, and converts the light with wavelengths below the green light wavelength to the green light. When the particle diameter of the CdSe quantum dot is close to 10 nanometers, the CdSe quantum dot absorbs light with wavelengths below a red light wavelength, and converts the light with wavelengths below the red light wavelength to the red light. In addition, a structure of the quantum dot can be composed of more than one semiconductor material. A shell of the quantum dot and a core of the quantum dot can be made of different materials respectively. The present invention utilizes the quantum dots with different particle sizes to generate light with different colors for improving illumination efficiency of a projector.
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According to the above arrangement, when providing the blue light or green light to the image generating element 220 for generating the blue images or the green images, the light conversion element LC rotates to dispose the light transmission block T on the light path P, such that the blue light generated by the first solid-state light source L1 or the green light generated by the second solid-state light source L2 can pass through. When providing the red light to the image generating element 220 for generating the red images, the light conversion element LC rotates to dispose the first quantum dot layer Q1 on the light path P, and the first solid-state light source L1, the second solid-state light source L2, and the third solid-state light source L3 can emit light at the same time to let the first quantum dot layer Q1 of the light conversion element LC convert the blue light generated by the first solid-state light source L1 and the green light generated by the second solid-state light source L2 to the red light with a wavelength around 650 nanometers, such that energy of the red light passed through the light conversion element LC comprises energy of the original red, green, and blue light. Therefore, the brightness of the red light transmitted from the light conversion element LC is increased significantly.
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According to the above arrangement, when providing the blue light to the image generating element 220 for generating the blue images, the light conversion element LC′ rotates to dispose the light transmission block T on the light path P, such that the blue light generated by the first solid-state light source L1 can pass through. When providing the green light to the image generating element 220 for generating the green images, the light conversion element LC′ rotates to dispose the second quantum dot layer Q2 on the light path P, and the first solid-state light source L1 and the second solid-state light L2 can emit light at the same time to let the second quantum dot layer Q2 of the light conversion element LC′ convert the blue light generated by the first solid-state light source L1 to the green light with a wavelength around 550 nanometers, such that energy of the green light passed through the light conversion element LC′ comprises energy of the original green light and the blue light. Therefore, the brightness of the green light transmitted from the light conversion element LC′ is increased significantly. Similarly, when providing the red light to the image generating element 220 for generating the red images, the light conversion element LC′ rotates to dispose the first quantum dot layer Q1 on the light path P, and the first solid-state light source L1, the second solid-state light L2, and the third solid-state light L3 can emit light at the same time to let the first quantum dot layer Q1 of the light conversion element LC′ convert the blue light generated by the first solid-state light source L1 and the green light generated by the second solid-state light source L2 to the red light with a wavelength around 650 nanometers, such that energy of the red light passed through the light conversion element LC′ comprises energy of the original red, green, and blue light. Therefore, the brightness of the red light transmitted from the light conversion element LC′ is increased significantly.
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The above embodiments are only for illustrating operation of the projector of the present invention. The quantity and the colors of the quantum dot layers of the light conversion element of the present invention can be determined according to design requirements. And, the light conversion element can also be disposed at other positions along the light path according to design requirements. Besides converting light passing through the light conversion element to light with a predetermined wavelength, the light conversion element can also convert light reflecting from the light conversion element to light with a predetermined wavelength.
In addition, the present invention can be also utilized in other types of image generating devices, such as a rear projection television or a liquid crystal display device. The image generating device of the present invention can utilize the light conversion element and the corresponding solid-state light source to generate light with different colors, and further generates color images.
In contrast to the prior art, the image generating device of the present invention utilizes quantum dots to absorb light with different wavelengths and converts the light to light with a predetermined wavelength, such that the illumination efficiency of each color is increased, and the brightness of images is increased as well. Moreover, the projector of the present invention can also reduce the quantity of the solid-state light sources in order to simplify the structure of the solid-state lighting projector.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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100135214 | Sep 2011 | TW | national |