Patents by Inventor Feng-Jia Shiu

Feng-Jia Shiu has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 10910260
    Abstract: A method for manufacturing a semiconductor device includes forming a structure protruding from a substrate, forming a dielectric layer covering the structure, forming a dummy layer covering the dielectric layer, and performing a planarization process to completely remove the dummy layer. A material of the dummy layer has a slower removal rate to the planarization process than a material of the dielectric layer.
    Type: Grant
    Filed: October 25, 2019
    Date of Patent: February 2, 2021
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Wei-Chieh Huang, Chin-Wei Liang, Feng-Jia Shiu, Hsia-Wei Chen, Jieh-Jang Chen, Ching-Sen Kuo
  • Publication number: 20210005649
    Abstract: In some embodiments, a pixel sensor is provided. The pixel sensor includes a first photodetector arranged in a semiconductor substrate. A second photodetector is arranged in the semiconductor substrate, where a first substantially straight line axis intersects a center point of the first photodetector and a center point of the second photodetector. A floating diffusion node is arranged in the semiconductor substrate at a point that is a substantially equal distance from the first photodetector and the second photodetector. A pick-up well contact region is arranged in the semiconductor substrate, where a second substantially straight line axis that is substantially perpendicular to the first substantially straight line axis intersects a center point of the floating diffusion node and a center point of the pick-up well contact region.
    Type: Application
    Filed: September 16, 2020
    Publication date: January 7, 2021
    Inventors: Seiji Takahashi, Chen-Jong Wang, Dun-Nian Yaung, Feng-Chi Hung, Feng-Jia Shiu, Jen-Cheng Liu, Jhy-Jyi Sze, Chun-Wei Chang, Wei-Cheng Hsu, Wei Chuang Wu, Yimin Huang
  • Publication number: 20200365645
    Abstract: A first photoresist pattern and a second photoresist pattern are formed over a substrate. The first photoresist pattern is separated from the second photoresist pattern by a gap. A chemical mixture is coated on the first and second photoresist patterns. The chemical mixture contains a chemical material and surfactant particles mixed into the chemical material. The chemical mixture fills the gap. A baking process is performed on the first and second photoresist patterns, the baking process causing the gap to shrink. At least some surfactant particles are disposed at sidewall boundaries of the gap. A developing process is performed on the first and second photoresist patterns. The developing process removes the chemical mixture in the gap and over the photoresist patterns. The surfactant particles disposed at sidewall boundaries of the gap reduce a capillary effect during the developing process.
    Type: Application
    Filed: August 3, 2020
    Publication date: November 19, 2020
    Inventors: Wei-Chao Chiu, Chih-Chien Wang, Feng-Jia Shiu, Ching-Sen Kuo, Chun-Wei Chang, Kai Tzeng
  • Patent number: 10797091
    Abstract: In some embodiments, a pixel sensor is provided. The pixel sensor includes a first photodetector arranged in a semiconductor substrate. A second photodetector is arranged in the semiconductor substrate, where a first substantially straight line axis intersects a center point of the first photodetector and a center point of the second photodetector. A floating diffusion node is arranged in the semiconductor substrate at a point that is a substantially equal distance from the first photodetector and the second photodetector. A pick-up well contact region is arranged in the semiconductor substrate, where a second substantially straight line axis that is substantially perpendicular to the first substantially straight line axis intersects a center point of the floating diffusion node and a center point of the pick-up well contact region.
    Type: Grant
    Filed: August 27, 2018
    Date of Patent: October 6, 2020
    Assignee: Taiwan Semiconductor Manufacturing Co., Ltd.
    Inventors: Seiji Takahashi, Chen-Jong Wang, Dun-Nian Yaung, Feng-Chi Hung, Feng-Jia Shiu, Jen-Cheng Liu, Jhy-Jyi Sze, Chun-Wei Chang, Wei-Cheng Hsu, Wei Chuang Wu, Yimin Huang
  • Patent number: 10734436
    Abstract: A first photoresist pattern and a second photoresist pattern are formed over a substrate. The first photoresist pattern is separated from the second photoresist pattern by a gap. A chemical mixture is coated on the first and second photoresist patterns. The chemical mixture contains a chemical material and surfactant particles mixed into the chemical material. The chemical mixture fills the gap. A baking process is performed on the first and second photoresist patterns, the baking process causing the gap to shrink. At least some surfactant particles are disposed at sidewall boundaries of the gap. A developing process is performed on the first and second photoresist patterns. The developing process removes the chemical mixture in the gap and over the photoresist patterns. The surfactant particles disposed at sidewall boundaries of the gap reduce a capillary effect during the developing process.
    Type: Grant
    Filed: September 26, 2018
    Date of Patent: August 4, 2020
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Wei-Chao Chiu, Chih-Chien Wang, Feng-Jia Shiu, Ching-Sen Kuo, Chun-Wei Chang, Kai Tzeng
  • Publication number: 20200176390
    Abstract: In a method of manufacturing a semiconductor device, a first interlayer dielectric (ILD) layer is formed over a substrate, a CMP stop layer is formed over the first ILD layer, a trench opening is formed by patterning the CMP stop layer and the first ILD layer, an underlying first process mark is formed by forming a first conductive layer in the trench opening, a lower dielectric layer is formed over the underlying first process mark, a middle dielectric layer is formed over the lower dielectric layer, an upper dielectric layer is formed over the middle dielectric layer, a planarization operation is performed on the upper, middle and lower dielectric layers so that a part of the middle dielectric layer remains over the underlying first process mark, and a second process mark by the lower dielectric layer is formed by removing the remaining part of the middle dielectric layer.
    Type: Application
    Filed: October 3, 2019
    Publication date: June 4, 2020
    Inventors: Ying-Hua CHEN, Feng-Jia SHIU, Wen-Chen LU
  • Publication number: 20200135538
    Abstract: In a method of manufacturing a semiconductor device, a first interlayer dielectric (ILD) layer is formed over a substrate, a chemical mechanical polishing (CMP) stop layer is formed over the first ILD layer, a trench is formed by patterning the CMP stop layer and the first ILD layer, a metal layer is formed over the CMP stop layer and in the trench, a sacrificial layer is formed over the metal layer, a CMP operation is performed on the sacrificial layer and the metal layer to remove a portion of the metal layer over the CMP stop layer, and a remaining portion of the sacrificial layer over the trench is removed.
    Type: Application
    Filed: September 26, 2019
    Publication date: April 30, 2020
    Inventors: Tsai-Ming HUANG, Wei-Chieh HUANG, Hsun-Chung KUANG, Yen-Chang CHU, Cheng-Che CHUNG, Chin-Wei LIANG, Ching-Sen KUO, Jieh-Jang CHEN, Feng-Jia SHIU, Sheng-Chau CHEN
  • Publication number: 20200127000
    Abstract: A wafer having a first region and a second region is provided. A first topography variation exists between the first region and the second region. A first layer is formed over the first region and over the second region of the wafer. The first layer is patterned. A patterned first layer causes a second topography variation to exist between the first region and the second region. The second topography variation is smoother than the first topography variation. A second layer is formed over the first region and the second region. At least a portion of the second layer is formed over the patterned first layer.
    Type: Application
    Filed: December 19, 2019
    Publication date: April 23, 2020
    Inventors: Chun-Chang Wu, Chihy-Yuan Cheng, Sz-Fan Chen, Shun-Shing Yang, Wei-Lin Chang, Ching-Sen Kuo, Feng-Jia Shiu, Chun-Chang Chen
  • Publication number: 20200075318
    Abstract: In a method of manufacturing a semiconductor device, a first layer having an opening is formed over a substrate. A second layer is formed over the first layer and the substrate. A photo resist pattern is formed over the second layer above the opening of the first layer. The photo resist pattern is reflowed by a thermal process. An etch-back operation is performed to planarize the second layer.
    Type: Application
    Filed: May 30, 2019
    Publication date: March 5, 2020
    Inventors: Cheng-Che CHUNG, Yi Jen TSAI, Ching-Sen KUO, Tsai-Ming HUANG, Jieh-Jang CHEN, Feng-Jia SHIU
  • Publication number: 20200058545
    Abstract: A method for manufacturing a semiconductor device includes forming a structure protruding from a substrate, forming a dielectric layer covering the structure, forming a dummy layer covering the dielectric layer, and performing a planarization process to completely remove the dummy layer. A material of the dummy layer has a slower removal rate to the planarization process than a material of the dielectric layer.
    Type: Application
    Filed: October 25, 2019
    Publication date: February 20, 2020
    Inventors: Wei-Chieh HUANG, Chin-Wei LIANG, Feng-Jia SHIU, Hsia-Wei CHEN, Jieh-Jang CHEN, Ching-Sen KUO
  • Publication number: 20200035918
    Abstract: A method includes providing a substrate having a conductive column, a dielectric layer over the conductive column, and a plurality of sacrificial blocks over the dielectric layer, the plurality of sacrificial blocks surrounding the conductive column from a top view; depositing a sacrificial layer covering the plurality of sacrificial blocks, the sacrificial layer having a dip directly above the conductive column; depositing a hard mask layer over the sacrificial layer; removing a portion of the hard mask layer from a bottom of the dip; etching the bottom of the dip using the hard mask layer as an etching mask, thereby exposing a top surface of the conductive column; and forming a conductive material inside the dip, the conductive material being in physical contact with the top surface of the conductive column.
    Type: Application
    Filed: October 7, 2019
    Publication date: January 30, 2020
    Inventors: Wei-Chieh Huang, Jieh-Jang Chen, Feng-Jia Shiu, Chern-Yow Hsu
  • Patent number: 10546889
    Abstract: Implementations of the disclosure provide a method of fabricating an image sensor device. The method includes forming first trenches in a first photoresist layer using a first photomask having a first pattern to expose a first surface of a substrate, directing ions into the exposed first substrate through the first trenches to form first isolation regions in the substrate, removing the first photoresist layer, forming second trenches in a second photoresist layer using a second photomask having a second pattern to expose a second surface of the substrate, the second pattern being shifted diagonally from the first pattern by half mask pitch, directing ions into the exposed second surface through the second trenches to form second isolation regions in the substrate, the first and second isolation regions being alternatingly disposed in the substrate, and the first and second isolation regions defining pixel regions therebetween, and removing the second photoresist layer.
    Type: Grant
    Filed: November 5, 2018
    Date of Patent: January 28, 2020
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Wei-Chao Chiu, Chih-Chien Wang, Feng-Jia Shiu, Ching-Sen Kuo, Chun-Wei Chang, Kai Tzeng
  • Patent number: 10522557
    Abstract: A wafer having a first region and a second region is provided. A first topography variation exists between the first region and the second region. A first layer is formed over the first region and over the second region of the wafer. The first layer is patterned. A patterned first layer causes a second topography variation to exist between the first region and the second region. The second topography variation is smoother than the first topography variation. A second layer is formed over the first region and the second region. At least a portion of the second layer is formed over the patterned first layer.
    Type: Grant
    Filed: October 30, 2017
    Date of Patent: December 31, 2019
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Chun-Chang Wu, Chihy-Yuan Cheng, Sz-Fan Chen, Shun-Shing Yang, Wei-Lin Chang, Ching-Sen Kuo, Feng-Jia Shiu, Chun-Chang Chen
  • Patent number: 10510587
    Abstract: A method for manufacturing a semiconductor device includes forming a structure protruding from a substrate, forming a dielectric layer covering the structure, forming a dummy layer covering the dielectric layer, and performing a planarization process to completely remove the dummy layer. A material of the dummy layer has a slower removal rate to the planarization process than a material of the dielectric layer.
    Type: Grant
    Filed: February 26, 2018
    Date of Patent: December 17, 2019
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Wei-Chieh Huang, Chin-Wei Liang, Feng-Jia Shiu, Hsia-Wei Chen, Jieh-Jang Chen, Ching-Sen Kuo
  • Publication number: 20190371838
    Abstract: In some embodiments, a pixel sensor is provided. The pixel sensor includes a first photodetector arranged in a semiconductor substrate. A second photodetector is arranged in the semiconductor substrate, where a first substantially straight line axis intersects a center point of the first photodetector and a center point of the second photodetector. A floating diffusion node is arranged in the semiconductor substrate at a point that is a substantially equal distance from the first photodetector and the second photodetector. A pick-up well contact region is arranged in the semiconductor substrate, where a second substantially straight line axis that is substantially perpendicular to the first substantially straight line axis intersects a center point of the floating diffusion node and a center point of the pick-up well contact region.
    Type: Application
    Filed: August 27, 2018
    Publication date: December 5, 2019
    Inventors: Seiji Takahashi, Chen-Jong Wang, Dun-Nian Yaung, Feng-Chi Hung, Feng-Jia Shiu, Jen-Cheng Liu, Jhy-Jyi Sze, Chun-Wei Chang, Wei-Cheng Hsu, Wei Chuang Wu, Yimin Huang
  • Patent number: 10439135
    Abstract: A method includes providing a substrate having a conductive column, a dielectric layer over the conductive column, and a plurality of sacrificial blocks over the dielectric layer, the plurality of sacrificial blocks surrounding the conductive column from a top view; depositing a sacrificial layer covering the plurality of sacrificial blocks, the sacrificial layer having a dip directly above the conductive column; depositing a hard mask layer over the sacrificial layer; removing a portion of the hard mask layer from a bottom of the dip; etching the bottom of the dip using the hard mask layer as an etching mask, thereby exposing a top surface of the conductive column; and forming a conductive material inside the dip, the conductive material being in physical contact with the top surface of the conductive column.
    Type: Grant
    Filed: January 31, 2018
    Date of Patent: October 8, 2019
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Wei-Chieh Huang, Jieh-Jang Chen, Feng-Jia Shiu, Chern-Yow Hsu
  • Patent number: 10366916
    Abstract: A semiconductor structure includes a substrate having a first region and a second region being adjacent each other; a first patterned layer formed on the substrate, wherein the first patterned layer includes first features in the first region, wherein the second region is free of the patterned layer; and a first guard ring disposed in the second region and surrounding the first features, wherein the first guard ring includes a first width W1 and is spaced a first distance D1 from the first features, W1 being greater than D1.
    Type: Grant
    Filed: March 12, 2018
    Date of Patent: July 30, 2019
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Chihy-Yuan Cheng, Chun-Chang Wu, Shun-Shing Yang, Ching-Sen Kuo, Feng-Jia Shiu, Chun-Chang Chen
  • Publication number: 20190140173
    Abstract: A method includes providing a substrate having a conductive column, a dielectric layer over the conductive column, and a plurality of sacrificial blocks over the dielectric layer, the plurality of sacrificial blocks surrounding the conductive column from a top view; depositing a sacrificial layer covering the plurality of sacrificial blocks, the sacrificial layer having a dip directly above the conductive column; depositing a hard mask layer over the sacrificial layer; removing a portion of the hard mask layer from a bottom of the dip; etching the bottom of the dip using the hard mask layer as an etching mask, thereby exposing a top surface of the conductive column; and forming a conductive material inside the dip, the conductive material being in physical contact with the top surface of the conductive column.
    Type: Application
    Filed: January 31, 2018
    Publication date: May 9, 2019
    Inventors: Wei-Chieh Huang, Jieh-Jang Chen, Feng-Jia Shiu, Chern-Yow Hsu
  • Publication number: 20190131313
    Abstract: A wafer having a first region and a second region is provided. A first topography variation exists between the first region and the second region. A first layer is formed over the first region and over the second region of the wafer. The first layer is patterned. A patterned first layer causes a second topography variation to exist between the first region and the second region. The second topography variation is smoother than the first topography variation. A second layer is formed over the first region and the second region. At least a portion of the second layer is formed over the patterned first layer.
    Type: Application
    Filed: October 30, 2017
    Publication date: May 2, 2019
    Inventors: Chun-Chang Wu, Chihy-Yuan Cheng, Sz-Fan Chen, Shun-Shing Yang, Wei-Lin Chang, Ching-Sen Kuo, Feng-Jia Shiu, Chun-Chang Chen
  • Patent number: 10276375
    Abstract: A method includes receiving an integrated circuit (IC) layout having a pattern layer. The pattern layer includes a main layout pattern. A dimension W1 of the main layout pattern along a first direction is greater than a wafer metrology tool's critical dimension (CD) measurement upper limit. The method further includes adding a plurality of assistant layout patterns into the pattern layer. The plurality of assistant layout patterns includes a pair of CD assistant layout patterns on both sides of the main layout pattern along the first direction. The pair of CD assistant layout patterns have a substantially same dimension W2 along the first direction and are about equally distanced from the main layout pattern by a dimension D1. The dimensions W2 and D1 are greater than a printing resolution in a photolithography process and are equal to or less than the wafer metrology tool's CD measurement upper limit.
    Type: Grant
    Filed: November 18, 2016
    Date of Patent: April 30, 2019
    Assignee: TAIWAN SEMICONDUCTOR MANUFACTURING CO., LTD.
    Inventors: Hung-Wen Cho, Wen-Chen Lu, Chaos Tsai, Feng-Jia Shiu