1. Field of the Invention
The present invention relates to a field emission system and a method for improving its vacuum, and more particularly, to a field emission system employing surface-unsaturated nanomaterial as getter material.
2. Description of Related Art
In field emission display (FED) devices, each pixel contains several hundreds to thousands of micro-tip emitters or cabon nanotubes (CNTs) formed on a back plate of the field emission display device to serve as electron emission sources, and a phosphor layer emitting light by way of being bombarded by electrons from the electron emission sources is formed on a front plate of the field emission display device. A gap between the front plate and the back plate of the field emission display device is usually about 200 μm to several millimeters (mms). The display must be maintained in a high vacuum level so that electrons move without energy loss.
In the field emission process, if there are residual gases in the vacuum field emission system, these residual gas molecules would interact with field emission electrons and becomes ionized. The ionized species are accelerated toward the cathode under the application of electric field, and finally bombarding onto the surface of emitters with a certain quantity of energy. It is so-called ion bombardment. Under the influence of ion bombardment, the shape of the emitter tip is gradually deteriorated, and the distribution of electric field is affected. Finally, the field emission current decreases and even disappear. The field emission process may not be performed in an absolute vacuum level. Therefore, the decrease of the field emission performance caused by ion bombardment is almost unavoidable. However, ion bombardment strength is correlated with the vacuum level of the system very much. The higher the vacuum level is, the less the residual gas is, and ion bombardment becomes weaker. As shown in
Accordingly, it is an intention to provide an improved getter device applicable in the field emission display device to alleviate the drawbacks of the conventional field emission display device.
The present invention is to provide a field emission system and method for improving its vacuum, which employs aging surface-unsaturated carbon nanotubes as getter agent to absorb residual gas within the system so as to improve its vacuum.
A field emission system of the present invention comprises an upper substrate; a lower substrate disposed under the upper substrate and a field emission area and a getter area defined therebetween; an anode array formed on an inner surface of the upper substrate corresponding to the field emission area and including at least one first anode wire; a phosphor layer formed under the anode array; a cathode array formed on an inner surface of the lower substrate corresponding to the anode array and including at least one first cathode wire; a carbon nanotube (CNT) field emission array including a plurality of carbon nanotube units formed on the at least one first cathode wire and each of carbon nanotube units including a plurality of carbon nanotubes; at least one second anode wire formed on the inner surface of the upper substrate corresponding to the getter area; at least one second cathode wire formed on the inner surface of the lower substrate corresponding to the second anode wire; and a plurality of surface-unsaturated carbon nanotubes formed on the second cathode wire.
The present invention grows carbon nanotubes in the getter area of the field emission system for absorbing residual gas within the field emission system. The carbon nanotubes have become surface-unsaturated getting material by aging process and then have capability of absorbing residual gas within the system to improve the vacuum level of the system. In addition, the surface-unsaturated carbon nanotubes as the getting material also can be formed on other non-display areas outside pixel areas of the field emission system.
In one another aspect, the present invention provides a method for improving vacuum of the present field emission system. Before sealing the system, from the field emission area to the getter area, sequentially providing energy to the carbon nanotubes growing on the first cathode wires and second cathode wires such that gas bonding on the carbon nanotubes' surfaces and residual gas accumulated in interstices of the stacking carbon nanotubes absorb the energy and are released. Thereafter, removing the residual gas within the system and sealing the system.
The method for improving vacuum of the field emission system of the present invention can be integrated in standard processes of field emission display devices without additional fabricating steps, thus facilitating mass production of the field emission display devices. Moreover, it is unnecessary to add a getter device to the present field emission system. The fabricating cost can be reduced. The system's thickness and weight also can be decreased.
The carbon nanotubes are employed as field emitters in the field emission display device. The carbon nanotubes have large surface areas easily bonding gas thereto and the carbon nanotubes growing by the conventional ways are easily stacked together to result in gas accumulation in the interstices of the stacking carbon nanotubes. The above process disadvantages often cause the field emission effect unclear, and affecting the illuminating efficiency of the display panel. As such, before gas exhausting until vacuum inside the panel, the conventional processes employ an aging process on the carbon nanotubes to release gas bonding to their surfaces and accumulated in the interstices of the stacking carbon nanotubes to stabilize the vacuum. inside the panel and improve field emission performance. The present invention utilizes the characteristic of the carbon nanotubes whose surfaces easily absorb gas to grow the carbon nanotubes in the non-display area of the field emission display, and aging the carbon nanotubes to become absorbing material having surface-unsaturated and gas-absorbing properties. The surface-unsaturated carbon nanotubes absorb residual gas inside the panel after sealing it so as to improve and maintain the vacuum level inside the panel.
In other words, the present invention provides a getter mechanism, which grows surface-unsaturated carbon nanotubes in the non-display area of the field emission system such that after sealing the field emission system, the surface-unsaturated carbon nanotubes absorb residual gas within the system to improve the vacuum level inside the system.
The field emission system and the method for improving its vacuum of the present invention will be described in detail in the following according to preferred embodiments with reference to accompanying drawings. Besides, the field emission system of the present invention also is applicable in illuminating systems such as a backlight source.
Before sealing the panel of the field emission display of the first embodiment, the aging process is performed unto the carbon nanotube units 2042 in the display area 23 and the carbon nanotubes 207 in the getter area 24 such that the gases bonding to the surfaces of the carbon nanotubes and accumulated in the interstices of the stacking carbon nanotubes are released, and the carbon nanotubes 207 in the getter area 24 become surface-unsaturated absorbing material. The residual gas within the system is exhausted by a vacuum system, and then the panel is sealed. While the field emission display is operated, voltage is not applied to the second anode wire 205 and the second cathode wire 206 of the getter area 24. As such, the carbon nanotubes 207 are only functioned as getter agent but do not provide field emission.
In addition, the surface-unsaturated carbon nanotubes also can be formed on other non-display areas such as the inner surface areas of the lower substrate 22 corresponding to the black matrix 208 as getter material (not shown), and the voltage is not applied to these surface-unsaturated carbon nanotubes, while the field emission display is operated, such that these surface-unsaturated carbon nanotubes are only functioned as getter agent.
Similarly, before sealing the panel of the field emission display device of the third embodiment, the aging process is performed unto the carbon nanotube units 305 in the display area 33 and the carbon nanotubes 309 in the getter area 34 such that the gases bonding to the surfaces of the carbon nanotubes and accumulated in the interstices of the stacking carbon nanotubes are released, and the carbon nanotubes 309 in the getter area 34 become surface-unsaturated absorbing material. The residual gas within the system is exhausted by the vacuum system, and then the panel is sealed. While the field emission display device is operated, the voltage is not applied to the second anode wire 307 and the second cathode wire 308 of the getter area 34. Thus, the carbon nanotubes 309 are only functioned as getter agent but do not provide field emission. Alternatively, the carbon nanotubes 309 in the getter area 34 also can grow on the second anode wire 307.
The geometric shape of the getter area of the present field emission display device can be varied according to the shape of the display panel, the carbon nanotubes grow and arrange in a way depending on the geometric shape of the getter area. Referring to
Besides, the field emission system of the present invention can be served as a backlight module. Under this situation, the phosphor layer does not need to be provided with a black matrix therein.
On the other hand, the present invention provides a method for improving the vacuum of the field emission system. Before sealing the field emission system, the aging process is applied to the carbon nanotubes in the field emission area and the getter area by external stimulus such that the gases bonding to the surfaces of the carbon nanotubes and accumulated in the interstices of the stacking carbon nanotubes are released, and the carbon nanotubes in the getter area become surface-unsaturated absorbing nanomaterial. The residual gas within the system is exhausted by the vacuum system, and then the panel is sealed. After sealing the system, the surface-unsaturated carbon nanotubes in the getter area serve as getter agent to absorb the residual gas within the system to improve the system vacuum. FIG. 5A and
The present invention provides a getter mechanism that employs the aging surface-unsaturated carbon nanotubes in the non-display area to serve as the getter agent of the present field emission system. The present getter structure can be integrated in standard processes of the field emission display devices without additional fabricating steps. The fabricating cost can be decreased, and advantageously mass-producing the field emission display devices. Moreover, it is unnecessary to add a getter device in the present field emission system. The thickness and weight of the system can be decreased.
While the invention will be described by way of examples and in terms of preferred embodiments, it is to be understood that those who are familiar with the subject art can carry out various modifications and similar arrangements and procedures described in the present invention and also achieve the effectiveness of the present invention. Hence, it is to be understood that the description of the present invention should be accorded with the broadest interpretation to those who are familiar with the subject art, and the invention is not limited thereto.
Number | Date | Country | Kind |
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95130455 A | Aug 2006 | TW | national |
Number | Name | Date | Kind |
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6771012 | Ahmed et al. | Aug 2004 | B2 |
6777869 | Pavlovsky | Aug 2004 | B2 |
Number | Date | Country | |
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20080042547 A1 | Feb 2008 | US |