Patent application number | Description | Published |
20090146278 | Chip-stacked package structure with asymmetrical leadframe - The present invention provides a chip-stacked package structure, comprising: a lead-frame, composed of a plurality of inner leads and a plurality of outer leads, wherein the inner leads comprise a plurality of first inner leads in parallel and a plurality of second inner leads in parallel, and the ends of the first inner leads and the second inner leads are arranged opposite each other at a distance. The first inner leads is provided with a down-set structure, which results in different vertical heights of the position of the end of first inner leads and the position of the end of second inner leads. A chip-stacked package structure is then fixedly connected to the first inner leads, and the metallic bonding pads on the same side edge are electrically connected to the first inner leads and the second inner leads through a plurality of metal wires; and an encapsulant with a top surface and a bottom surface is provided to cover the chip-stacked package structure and the inner leads. | 06-11-2009 |
20110068455 | PACKAGING STRUCTURE AND METHOD FOR MANUFACTURING THE SAME - This invention relates to a packaging structure and method for manufacturing the packaging structure. The packaging structure comprises a substrate film, a plurality of chips, a compound resin layer and a support layer. The substrate film is formed with circuits having a plurality of terminals exposed from a solder mask. The chips, each of which has a plurality of pads, under bump metals (UBMs) formed on the pads, and composite bumps disposed onto the UBMs, are bonded onto the substrate film to form the first tape. The second tape comprises the support layer and the compound resin layer formed on the support layer. The first tape and the second tape are both in reel-form and are expanded towards a pair of rollers to be heated and pressurized for encapsulating the chips. | 03-24-2011 |
20110207262 | Method For Manufacturing A Semiconductor Structure - The present invention provides a method for manufacturing a semiconductor structure, comprising the following steps of: forming a substrate having a package array, wherein the package array has a plurality of contact pads and a protection layer, and the plurality of contact pads are exposed to the outer side of the protection layer; forming a thermosetting non-conductive layer covering the substrate; partially solidifying the thermosetting non-conductive layer to form a semi-solid non-conductive layer; connecting chips to the package array on the substrate, wherein each of the chips has an active surface, a plurality of chip pads and a plurality of composite bumps, the chip pads are formed on the active surface, and the composite bumps are formed on the chip pads so that the composite bumps electrically connect to each of the contact pads; pressing and heating the chips and the substrate so that the semi-solid non-conductive layer adheres with the chips and the substrate; pre-heating an encapsulant preformed on a metal layer; covering the chips on the substrate with the encapsulant; and solidifying the encapsulant to completely cover the chips on the substrate. The present invention can reduce use of gold to lower the manufacturing cost and can also improve the heat conduction efficiency of the semiconductor structure to enhance operational stability of the chips. | 08-25-2011 |
20110298124 | Semiconductor Structure - A semiconductor structure is provided. By using a composite bump with replace of a gold bump, the consumption of gold can be reduced and the manufacturing cost can be decreased accordingly. Moreover, by using an encapsulation material formed on a metal layer, the heat transferring efficiency of the semiconductor structure can be improved and the stability thereof can be increased. | 12-08-2011 |
20120018883 | CONDUCTIVE STRUCTURE FOR A SEMICONDUCTOR INTEGRATED CIRCUIT - A conductive structure for a semiconductor integrated circuit is provided. The semiconductor integrated circuit has a substrate, a plurality of pads and a passivation layer. The pads are disposed on the substrate. The passivation layer extends over and covers a part of the substrate and a part of around each of the pads to define a plurality of openings, in which the conductive structure electrically connects to a corresponding pad of the pads through a corresponding opening of the openings. The conductive structure includes a buffering layer, an under bump metallurgy (UBM) layer and a bump. The buffering layer is formed on the passivation layer without fully blocking the corresponding opening. The UBM layer is substantially formed in the corresponding opening and electrically connects to the corresponding pad. Additionally, the UBM layer, formed under the bump, continuously extends over and covers a peripheral portion of the buffering layer. | 01-26-2012 |
20120074402 | PACKAGING STRUCTURE - This invention relates to a packaging structure and method for manufacturing the packaging structure. The packaging structure comprises a substrate film, a plurality of chips, a compound resin layer and a support layer. The substrate film is formed with circuits having a plurality of terminals exposed from a solder mask. The chips, each of which has a plurality of pads, under bump metals (UBMs) formed on the pads, and composite bumps disposed onto the UBMs, are bonded onto the substrate film to form the first tape. The second tape comprises the support layer and the compound resin layer formed on the support layer. The first tape and the second tape are both in reel-form and are expanded towards a pair of rollers to be heated and pressurized for encapsulating the chips. | 03-29-2012 |
20120278789 | COMPUTER IMPLEMENTED APPARATUS FOR GENERATING AND FILTERING CREATIVE PROPOSAL - A computer implemented apparatus for automatically generating and filtering creative proposals is disclosed. Particularly, the computer implemented apparatus automatically generates all possible featured component code sets which corresponding to all possible featured components, and compares them to the prior art code sets which corresponding to the prior objects. Thereby, the novel code sets which corresponding to the novel creative proposals are rapidly filtered out. The computer implemented apparatus comprises a standard component database, a permutation and combination module, a featured component code set database, a prior art code set database, a matching module, a sifting module and an output module. | 11-01-2012 |
20120313234 | QFN PACKAGE AND MANUFACTURING PROCESS THEREOF - The present invention provides a Quad Flat Non-leaded (QFN) package, which comprises a chip, a lead frame, a plurality of composite bumps and an encapsulant. The chip has a plurality of pads, and the lead frame has a plurality of leads. Each of the plurality of composite bumps has a first conductive layer and a second conductive layer. The first conductive layer is electrically connected between one of the pads and the second conductive layer, and the second conductive layer is electrically connected between the first conductive layer and one of the leads. The encapsulant encapsulates the chip, the leads and the composite bumps. Thereby, a QFN package with composite bumps and a semi-cured encapsulant is forming between the spaces of leads of lead frame before chip bonded to the lead frame are provided. | 12-13-2012 |
20130127047 | CONDUCTIVE STRUCTURE AND METHOD FOR FORMING THE SAME - A conductive structure for a semiconductor chip and a method for forming the conductive structure are provided. The semiconductor chip comprises a semiconductor substrate, a pad, a passivation layer and a patterned insulating layer. The patterned insulating layer is disposed on the passivation layer and partially and directly covers the first opening of the pad to expose a second opening. The conductive structure comprises an under bump metal (UBM) layer and a conductive bump. The UBM layer is disposed in the second opening defined by the patterned insulating layer and is electrically connected to the pad. The conductive bump is disposed on the UBM layer and is electrically connected to the UBM layer. The upper surface of the conductive bump is greater than the upper surface of the patterned insulating layer, while the portion of the conductive bump disposed in the second opening is covered by the UBM layer. | 05-23-2013 |
20130147037 | SEMICONDUCTOR STRUCTURE - A semiconductor structure is provided. The semiconductor structure includes a substrate, at least two pads, a passivation layer, at least two under bump metallization (UBM) layers and at least two bumps. The pads are disposed adjacent to each other on the substrate along the first direction. The passivation layer covers the substrate and the peripheral upper surface of each pad to define an opening. Each of the openings defines an opening projection along the second direction. The opening projections are disposed adjacent to each other but not overlapping with each other. Furthermore, the first direction is perpendicular to the second direction. The UBM layers are disposed on the corresponding openings, and the bumps are respectively disposed on the corresponding UBM layers. With the above arrangements, the width of each bump of the semiconductor structure of the present invention could be widened without being limited by the bump pitch. | 06-13-2013 |
20130249042 | STRUCTURE OF STACKING CHIPS AND METHOD FOR MANUFACTURING THE SAME - A structure of stacking chips and a method for manufacturing the structure of stacking chips are provided. A wafer with optical chips and a glass substrate with signal processing chips are stacked with each other, and then subjected to ball mounting and die sawing to form the stacked packaging structure. The optical chips and the signal processing chips form the electrical connection on the surface of the glass substrate via the through holes thereof. | 09-26-2013 |
20130280865 | QFN Package and Manufacturing Process Thereof - The present invention provides a Quad Flat Non-leaded (QPN) package, which comprises a chip, a lead frame, a plurality of composite bumps and an encapsulant. The chip has a plurality of pads, and the lead frame has a plurality of leads. Each of the plurality of composite bumps has a first conductive layer and a second conductive layer. The first conductive layer is electrically connected between one of the pads and the second conductive layer, and the second conductive layer is electrically connected between the first conductive layer and one of the leads. The encapsulant encapsulates the chip, the leads and the composite bumps. Thereby, a QFN package with composite bumps and a semi-cured encapsulant is forming between the spaces of leads of lead frame before chip bonded to the lead frame are provided. | 10-24-2013 |
20130294033 | THERMALLY ENHANCED ELECTRONIC PACKAGE - A thermally enhanced electronic package comprises a driver chip, an insulator, a flexible carrier, and carbon nanocapsules. The flexible carrier includes a flexible substrate, a wiring layer formed on the substrate, and a resistant overlaying the wiring layer. The driver chip is connected to the wiring layer. The insulator is filled in the gap between the driver chip and the flexible carrier. The carbon nanocapsules are disposed on the driver chip, on the resistant, on the flexible carrier, or in the insulator to enhance heat dissipation of electronic packages. | 11-07-2013 |