1. Field of the Invention
The present invention relates to an electronic button, and more particularly, to an electronic button made by a transparent conductive structure and a related panel module and a related electronic device.
2. Description of the Prior Art
A conventional transparent conductive membrane is applied to a display industry, such as a liquid crystal display, a solar panel and a touch panel. The liquid crystal display utilizes the transparent conductive membrane to transmit electronic signal between the thin-film transistor (TFT) array and the color filter. The conventional transparent conductive membrane has properties of low resistance, high transmittance and high conductivity, so as to be disposed on a transparent electrode of the display for uniformly current transmission. In addition, the conventional transparent conductive membrane can further be an anti-reflection membrane and a thermo reflective membrane for power economy due to its specific optical characteristic. The conventional transparent conductive membrane does not utilize the conductivity to form a functional switch for power execution. Therefore, design of an electronic button on the display by the transparence and the transmittance of the transparent conductive membrane is an important issue of the electronic industry.
The present invention provides an electronic button made by a transparent conductive structure and a related panel module and a related electronic device for solving above drawbacks.
According to the claimed invention, an electronic button applied to a touch panel is disclosed. The electronic button includes a switch and a transparent conductive structure. The switch is electrically connected to the touch panel for switching operational functions of the touch panel. The transparent conductive structure is electrically connected to the switch and disposed on a surface of the touch panel. The transparent conductive structure transmits a current, and a reference value of the current is varied when an external object contacts the transparent conductive structure, so as to drive the switch to power on and to power off the touch panel.
According to the claimed invention, an electronic button applied to a touch panel is disclosed. The electronic button includes a switch and a conductive membrane. The switch is electrically connected to the touch panel for switching operational functions of the touch panel. The conductive membrane is electrically connected to the switch, and disposed on a surface of the touch panel. The conductive membrane transmits a current, and a reference value of the current is varied when an external object contacts the conductive membrane, so as to drive the switch to power on and to power off the touch panel.
According to the claimed invention, a panel module includes a touch panel, a power supply and an electronic button. The touch panel detects an external object. The electronic button is disposed on the touch panel. The electronic button includes a switch and a transparent conductive structure. The switch is electrically connected to the touch panel for switching operational functions of the touch panel. The transparent conductive structure is electrically connected to the switch and disposed on a surface of the touch panel. The transparent conductive structure transmits a current, and a reference value of the current is varied when an external object contacts the transparent conductive structure, so as to drive the switch to power on and to power off the touch panel.
According to the claimed invention, an electronic device includes a casing, a panel module and a controller. The panel module is disposed on a surface of the casing. The panel module includes a touch panel, a power supply and an electronic button. The touch panel detects an external object. The electronic button is disposed on the touch panel. The electronic button includes a switch and a transparent conductive structure. The switch is electrically connected to the touch panel for switching operational functions of the touch panel. The transparent conductive structure is electrically connected to the switch and disposed on a surface of the touch panel. The transparent conductive structure transmits a current, and a reference value of the current is varied when an external object contacts the transparent conductive structure, so as to drive the switch to power on and to power off the touch panel. The controller is electrically connected to the touch panel. The controller outputs a command according to detection of the external object by the touch panel.
The present invention transmits the stable minority current into the transparent conductive structure, the current variation is generated when the external object contacts the transparent conductive structure, so the transparent conductive structure can be combined with the switch to be the electronic button to power on and to power off the touch panel. The present invention disposes the transparent conductive structure with the great transmittance on the optical touch panel to form the electronic button. Thus, the optical electronic device of the present invention does not capture the unexpected movement of the external object, and can accurately determine indication of the user for outputting the correct command.
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.
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The panel module 14 includes a touch panel 16, a power supply 18 and an electronic button 20. As shown in
In addition, the electronic device 10 further includes a controller 26 electrically connected to the touch panel 16, as shown in
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The present invention disposes the transparent conductive structure 24 on an upper surface (the light emitting surface 281) of the touch panel 16. The transparent conductive structure 24 and the switch 22 are combined to be the electronic button 20, which is utilized to power on and to power off the touch panel 16. Therefore, the present invention can prevent the optical detector 32 and the controller 26 from actuation when the electronic device 10 is not in use and the external object passes through or contacts the light guide plate 28 in accident. Generally, the transparent conductive structure 24 can be made of indium tin oxide (ITO) material, aluminum zinc oxide (AZO) material or gallium-doping zinc oxide (GZO) material. Material of the transparent conductive structure 24 is not limited to the above-mentioned ones, any material with great transmittance, great conductivity and flexibility is proper to make the transparent conductive structure 24 of the present invention.
The optical detector 32 disposed on a side of the light guide plate 28 and the transparent conductive structure 24 can detect the movement of the external object placed on the other side of the light guide plate 28 and the transparent conductive structure 24. Because the reflective optical signal generated from the external object, which is put on the light emitting surface 281, may be varied by reflection and refraction when passing through the transparent material, the transparent conductive structure 24 has great transmittance to prevent the optical detector 32 from error detection. In addition, the transparent conductive structure 24 can transmit the current with the stable reference value. As the external object contacts the surface of the transparent conductive structure 24, the reference value of the current is interfered and varied, and the electronic button 20 can determine whether to actuate the touch panel 16 for outputting the command according to variation of the reference value. For example, the reference value of the current can be a voltage value, a current value or a resistance value, and depends on actual demand. The detailed forms of the reference value are omitted herein for simplicity.
First, the power supply 18 can output the stable current with a first value R1 to the transparent conductive structure 24, and the current is uniformly distributed over the transparent conductive structure 24. To power on the touch panel 16, the external object can contact the transparent conductive structure 24, which means the transparent conductive structure 24 is pressed and the external object enters a detective range of the optical detector 32. Meanwhile, the reference value of the current is varied. As the reference value is varied (decreased) from the first value R1 to a second value R2, the transparent conductive structure 24 can drive the switch 22 according to the variation of the reference value of the current, so as to power on the optical detector 22 for analyzing the movement of the external object above the light emitting surface 281.
The external object can be spaced from the transparent conductive structure 24 when the touch panel 16 is not in use. The finger or the stylus can be separated from the touch panel 14 and does not interfere with the current, so that the reference value of the current can be varied (increased) from the second value R2 to the first value R1. Thus, the switch 22 can power off the optical detector 22 to stop touch operational function of the touch panel 16 according to the variation of the reference value from the transparent conductive structure 24. In an embodiment, after the touch panel 16 is shut down, the optical detector 22 is not acted even through the external object moves above the light emitting surface 281, so as to effectively prevent the electronic device 10 from the error detection when the external object does not contact the panel module 14.
It should be mentioned that the transparent conductive structure 24 of the present invention can preferably be a flexible structure, so as to be the electronic button 20 to dispose on the touch panel 16. As shown in
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The touch screen applied to the panel module 14 of the present invention is not limited to the optical image touch screen, the resistive touch screen and the capacitive touch screen mentioned as above, which depends on design demand, and detailed description is omitted herein for simplicity. It should be mentioned that a conductive membrane of the electronic button 20 can be made of opaque material when the touch panel 50 is a non-optical touch panel, such as the resistive touch screen. Function of the conductive membrane is the same as the above-mentioned transparent conductive structure 24, and the conductive membrane is not shown in figures. Therefore, the conductive membrane applied to the electronic button of the non-optical touch panel has the flexibility, and the transmittance is not necessary.
In conclusion, the present invention covers the transparent conductive structure on the upper surface of the touch panel (such as the light emitting surface of the light guide plate), so as to form the button to adjust the detective function of the touch panel. Due to the great transmittance of the transparent conductive structure, the damage of the display function of the touch panel can be eliminated. And in the embodiments of the optical touch system, the optical detector of the touch panel can accurately capture the reflective optical signal from the external object through the light guide plate and the transparent conductive structure, so the optical touch detection of the panel module is not interfered. Besides, the transparent conductive structure further has great conductivity. The electronic device can utilize the power supply to output the stable minority current into the transparent conductive structure. As the external object contacts and not contact the transparent conductive structure, the reference value of the minority current can be decreased and increased, so as to drive the switch the power on and to power off the optical detector of the touch panel. Therefore, the present invention can ensure that the optical touch detection of the panel module is actuated when the external object contacts the touch panel (or the external object contacts the transparent conductive structure disposed on the touch panel), and can prevent the optical detector from error detection by capturing an unexpected image.
Comparing to the prior art, the present invention transmits the stable minority current into the transparent conductive structure, the current variation is generated when the external object contacts the transparent conductive structure, so the transparent conductive structure can be combined with the switch to be the electronic button to power on and to power off the touch panel. The present invention disposes the transparent conductive structure with the great transmittance on the optical touch panel to form the electronic button. Thus, the optical electronic device of the present invention does not capture the unexpected movement of the external object, and can accurately determine indication of the user for outputting the correct command.
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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101130993 | Aug 2012 | TW | national |