Abstract:
A process for fabricating a micro-display is provided. First, a wafer having a driving circuit thereon is provided. Then, a metallic reflective layer is formed on the wafer. Thereafter, an anti-reflection layer and a patterned photoresist layer are sequentially formed on the metallic reflective layer. Using the patterned photoresist layer as an etching mask, the anti-reflection layer and the metallic reflective layer are etched to form a trench pattern that exposes the surface of the wafer. After that, the patterned photoresist layer is removed. A dielectric layer is formed to cover the anti-reflection layer and fill the trench pattern. Then, a portion of the dielectric layer and the anti-reflection layer are removed to expose the surface of the metallic reflective layer.
Abstract:
A pixel array structure is provided. The pixel array structure comprises a plurality of pixel units and a plurality of dielectric walls. Each dielectric wall is disposed between two neighboring pixel units, wherein each pixel unit comprises at least one organic light emitting diode and a complementary metal-oxide-semiconductor (CMOS). The organic light emitting diode comprises a transparent electrode, a bottom electrode, and a light emitting material between the transparent electrode and the bottom electrode. The CMOS is disposed in a substrate. The substrate comprises a top-metal-layer structure located thereon and the top-metal-layer structure comprises an upmost top metal layer. Further, the bottom electrode of the CMOS is the upmost top metal layer of the top-metal-layer structure and the upmost top metal layer is a titanium metal layer.
Abstract:
A heat-dissipating device (1) including a casing (10), a thermal insulation plate (20), a thermoelectric cooling chip (30), a heat-dissipating body (40), super heat pipes (52), a cooler (53), a first fan (54) and a second fan (60). The thermal insulation plate (20) divides the interior of the casing (10) into a hot air zone (ZH) and a cold air zone (ZC). The thermoelectric cooling chip (30) is disposed on the thermal insulation plate (20) with its hot-end surface (32) facing the hot air zone (ZH). The heat-dissipating body (40) is disposed in the hot air zone (ZH) to contact the hot-end surface (32). The super heat pipes (52) and the cooler (53) thermally contact a cold-end surface (31) of the thermoelectric cooling chip (30). Thus, the cold generated by the cold-end surface (31) can be rapidly and uniformly conducted to other places to form a cold airflow.
Abstract:
The present invention relates to a LED lamp and a heat sink thereof having a wound heat pipe. The LED lamp includes the heat sink, a LED module and a lamp base electrically connected to the LED module. The heat sink includes a heat-conducting base, a heat-dissipating fin set and a wound heat pipe. The heat-dissipating fin set includes a plurality of heat-dissipating fins arranged at the outer periphery of the heat-conducting base. The heat-dissipating fins form an accommodating space. The wound heat pipe includes an evaporating section brought into thermal contact with the heat-conducting base and a condensing section brought into thermal contact with the heat-dissipating fins. The LED module abuts against the heat-conducting base and the evaporating section. By this structure, the heat-conducting path is shortened, the heat-conducting speed is accelerated, and the heat is rapidly and uniformly distributed to the heat-dissipating fins to improve the heat-dissipating efficiency.
Abstract:
A method for assembling a fins-type heat sink includes providing a heat sink, a presser and a plurality of caps, the heat sink having a heat pipe and a plurality of fins disposed on the heat pipe, the presser being provided with through-holes allowing the distal ends of the heat pipe to be inserted therein, a periphery of each through-hole being provided with an annular neck, the presser being provided with notches that are arranged circumferentially outside the annular neck; (b) covering the caps on the annular necks of the presser respectively, each caps extending downwards to form protruding flaps penetrating the notches; (c) disposing a plate-like die on the topmost fin of the heat sink; (d) inserting a distal end of the heat pipe through the through-hole of the presser to abut inside the cap, while folding the flaps outwards via the plate-like die.
Abstract:
A system, an apparatus, and a method for representing a multimedia display are proposed in the present invention for displaying multimedia data and a menu. The system comprises an interface from which the user may input signals and the apparatus comprising screens for displaying. Three signals can be inputted from the interface, a first signal, a second signal, and a third signal. The apparatus comprises a first screen for displaying multimedia data, a second screen for displaying menu, and optionally a third screen for displaying information related to the multimedia data. The method comprises the steps of: providing a first screen to display multimedia data; providing a second screen to display a menu; and optionally providing a third screen to display information related to multimedia data.
Abstract:
A LED lamp tube which includes a hollow transparent tube, a LED lamp assembly disposed in the transparent tube, two conductive caps provided on both ends of the transparent tube respectively, and a circuit control unit. The circuit control unit includes a plurality of separated sub-portions. The respective sub-portions of the circuit control unit are distributed uniformly on the circuit board of the LED lamp assembly. Via the uniform arrangement of respective sub-portions of the circuit control unit, the heat within the LED lamp tube can be distributed uniformly, thereby lowering the temperature and facilitating the heat dissipation.
Abstract:
A heat sink includes a fixing base, a plurality of heat pipes and a fixing body. The bottom surface of the fixing base is provided with a connecting plane and extends upwards to form a fixing arm. The fixing arm is provided with a plurality of first grooves. The fixing body is provided with a plurality of second grooves and combined with the fixing arm. The second grooves correspond to the first grooves for cooperatively receiving and clamping the upper edges of the evaporating sections of the heat pipes. The evaporating section of the heat pipe is provided with a contacting plane and an adhering plane. The contacting planes of the evaporating sections are adjacent to each other and the evaporating sections are fixed to the connecting plane of the fixing base. With this arrangement, the juxtaposed heat pipes can be assembled with the fixing base. Further, the condensing section of the heat pipe penetrates a plurality of fins to form the heat sink.
Abstract:
A heat dissipator having heat pipes includes a heat-conducting base, a first heat pipe and a second heat pipe. The heat-conducting base has an accommodating trough. After the first heat pipe is accommodated in the accommodating trough, it is deformed so as to abut against the inner wall face of the accommodating trough. Further, the second heat pipe and the first heat pipe are provided in the same accommodating trough, and the second heat pipe is overlapped vertically on the first heat pipe. As a result, the second heat pipe is deformed so as to abut against the first heat pipe and the interior of the accommodating trough, thereby enhancing the heat-conducting performance of the heat dissipator.
Abstract:
A heat-dissipating fin of a large area is made of a metallic sheet and has a fin body. An outer edge of one side of the fin body extends to form a sheet-like expanding portion. The expanding portion is bent and overlapped on the fin body to obtain the heat-dissipating fin. A heat sink includes a plurality of heat-dissipating fins and a heat-conducting element, which is formed by means of penetrating the respective heat-dissipating fins with a condensing section of the heat-conducting element.