Patents by Inventor Chin-Fu Lin

Chin-Fu Lin 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: 8361854
    Abstract: A fin field-effect transistor structure includes a substrate, a fin channel and a high-k metal gate. The high-k metal gate is formed on the substrate and the fin channel. A process of manufacturing the fin field-effect transistor structure includes the following steps. Firstly, a polysilicon pseudo gate structure is formed on the substrate and a surface of the fin channel. By using the polysilicon pseudo gate structure as a mask, a source/drain region is formed in the fin channel. After the polysilicon pseudo gate structure is removed, a high-k dielectric layer and a metal gate layer are successively formed. Afterwards, a planarization process is performed on the substrate having the metal gate layer until the first dielectric layer is exposed, so that a high-k metal gate is produced.
    Type: Grant
    Filed: March 21, 2011
    Date of Patent: January 29, 2013
    Assignee: United Microelectronics Corp.
    Inventors: Teng-Chun Tsai, Chun-Yuan Wu, Chin-Fu Lin, Chih-Chien Liu, Chin-Cheng Chien
  • Publication number: 20130009288
    Abstract: A method for fabricating a semiconductor device is disclosed. The method includes the steps of: providing a substrate; forming a dielectric layer on the substrate, wherein the dielectric layer comprises metal interconnects therein; forming a top metal layer on the dielectric layer; and forming a passivation layer on the top metal layer through high-density plasma chemical vapor deposition (HDPCVD) process.
    Type: Application
    Filed: July 7, 2011
    Publication date: January 10, 2013
    Inventors: Shu-Hui Hu, Shih-Feng Su, Hui-Shen Shih, Chih-Chien Liu, Po-Chun Chen, Ya-Jyuan Hung, Bin-Siang Tsai, Chin-Fu Lin
  • Publication number: 20130001707
    Abstract: A fabricating method of a MOS transistor includes the following steps. A substrate is provided. A gate dielectric layer is formed on the substrate. A nitridation process containing nitrogen plasma and helium gas is performed to nitride the gate dielectric layer. A fin field-effect transistor and fabrication method thereof are also provided.
    Type: Application
    Filed: June 30, 2011
    Publication date: January 3, 2013
    Inventors: Chien-Liang Lin, Ying-Wei Yen, Yu-Ren Wang, Chan-Lon Yang, Chin-Cheng Chien, Chun-Yuan Wu, Chih-Chien Liu, Chin-Fu Lin, Teng-Chun Tsai
  • Publication number: 20120326243
    Abstract: A transistor having an aluminum metal gate includes a substrate, a high-k gate dielectric layer, an aluminum metal gate and a source/drain region. The high-k gate dielectric layer is disposed on the substrate. The aluminum metal gate includes a work function tuning layer and an aluminum metal layer disposed orderly on the high-k gate dielectric layer, where the aluminum metal layer comprises a first aluminum metal layer and a second aluminum metal layer. Furthermore, the source/drain region is disposed in the substrate at each of two sides of the aluminum metal gate.
    Type: Application
    Filed: June 22, 2011
    Publication date: December 27, 2012
    Inventors: Hsin-Fu Huang, Chi-Mao Hsu, Min-Chuan Tsai, Chin-Fu Lin, Chun-Hsien Lin
  • Publication number: 20120319198
    Abstract: A semiconductor device including a substrate, a spacer and a high-k dielectric layer having a U-shape profile is provided. The spacer located on the substrate surrounds and defines a trench. The high-k dielectric layer having a U-shape profile is located in the trench, and the high-k dielectric layer having a U-shape profile exposes an upper portion of the sidewalls of the trench.
    Type: Application
    Filed: June 16, 2011
    Publication date: December 20, 2012
    Inventors: Chin-Cheng Chien, Chun-Yuan Wu, Chih-Chien Liu, Chin-Fu Lin, Teng-Chun Tsai
  • Publication number: 20120322260
    Abstract: A through-silicon via forming method includes the following steps. Firstly, a semiconductor substrate is provided. Then, a through-silicon via conductor is formed in the semiconductor substrate, and a topside of the through-silicon via conductor is allowed to be at the same level as a surface of the semiconductor substrate. Afterwards, a portion of the through-silicon via conductor is removed, and the topside of the through-silicon via conductor is allowed to be at a level lower than the surface of the semiconductor substrate, so that a recess is formed over the through-silicon via conductor.
    Type: Application
    Filed: June 16, 2011
    Publication date: December 20, 2012
    Applicant: UNITED MICROELECTRONICS CORP.
    Inventors: Teng-Chun Tsai, Chun-Yuan Wu, Chin-Fu Lin, Chih-Chien Liu, Chin-Cheng Chien
  • Publication number: 20120322218
    Abstract: A method for fabricating a semiconductor device includes the following steps. Firstly, a dummy gate structure having a dummy gate electrode layer is provided. Then, the dummy gate electrode layer is removed to form an opening in the dummy gate structure, thereby exposing an underlying layer beneath the dummy gate electrode layer. Then, an ammonium hydroxide treatment process is performed to treat the dummy gate structure. Afterwards, a metal material is filled into the opening.
    Type: Application
    Filed: June 16, 2011
    Publication date: December 20, 2012
    Applicant: UNITED MICROELECTRONICS CORP.
    Inventors: Chien-Ming LAI, Yi-Wen Chen, Zhi-Cheng Lee, Tong-Jyun Huang, Che-Hua Hsu, Kun-Hsien Lin, Tzung-Ying Lee, Chi-Mao Hsu, Hsin-Fu Huang, Chin-Fu Lin
  • Publication number: 20120319179
    Abstract: A metal gate includes a substrate, a gate dielectric layer, a work function metal layer, an aluminum nitride layer and a stop layer. The gate dielectric layer is located on the substrate. The work function metal layer is located on the gate dielectric layer. The aluminum nitride layer is located on the work function metal layer. The stop layer is located on the aluminum nitride layer.
    Type: Application
    Filed: June 16, 2011
    Publication date: December 20, 2012
    Inventors: Hsin-Fu Huang, Zhi-Cheng Lee, Chi-Mao Hsu, Chin-Fu Lin, Kun-Hsien Lin, Tzung-Ying Lee, Min-Chuan Tsai
  • Publication number: 20120305403
    Abstract: An electrical chemical plating process is provided. A semiconductor structure is provided in an electrical plating platform. A pre-electrical-plating step is performed wherein the pre-electrical-plating step is carried out under a fixed voltage environment and lasts for 0.2 to 0.5 seconds after the current is above the threshold current of the electrical plating platform. After the pre-electrical-plating step, a first electrical plating step is performed on the semiconductor structure.
    Type: Application
    Filed: June 6, 2011
    Publication date: December 6, 2012
    Inventors: Chun-Ling Lin, Yen-Liang Lu, Chi-Mao Hsu, Chin-Fu Lin, Chun-Hung Chen, Tsun-Min Cheng, Meng-Hong Tsai
  • Patent number: 8324118
    Abstract: A manufacturing method of a metal gate structure includes providing a substrate having at least a first metal oxide layer formed thereon, and transferring the surface of the first metal oxide layer into a second metal oxide layer. The first metal oxide layer includes a metal oxide (M1Ox) of a first metal (M1) and the second metal oxide layer includes a metal oxide ((M1M2Oy) of the first metal and a second metal (M2).
    Type: Grant
    Filed: March 28, 2011
    Date of Patent: December 4, 2012
    Assignee: United Microelectronics Corp.
    Inventors: Chih-Chien Liu, Chun-Yuan Wu, Chin-Fu Lin, Teng-Chun Tsai, Chin-Cheng Chien
  • Publication number: 20120292721
    Abstract: A method of fabricating a semiconductor device includes following steps. A substrate is provided, wherein a first dielectric layer having a trench therein is formed on the substrate, a source/drain region is formed in the substrate at two sides of the trench, and a second dielectric layer is formed on the substrate in the trench. A first physical vapor deposition process is performed to form a Ti-containing metal layer in the trench. A second physical vapor deposition process is performed to form an Al layer on the Ti-containing metal layer in the trench. A thermal process is performed to anneal the Ti-containing metal layer and the Al layer so as to form a work function metal layer. A metal layer is formed to fill the trench.
    Type: Application
    Filed: May 17, 2011
    Publication date: November 22, 2012
    Applicant: UNITED MICROELECTRONICS CORP.
    Inventors: Hsin-Fu Huang, Kun-Hsien Lin, Chi-Mao Hsu, Min-Chuan Tsai, Tzung-Ying Lee, Chin-Fu Lin
  • Publication number: 20120295437
    Abstract: A method for fabricating through-silicon via structure is disclosed. The method includes the steps of: providing a semiconductor substrate; forming a through-silicon via in the semiconductor substrate; covering a liner in the through-silicon via; performing a baking process on the liner; forming a barrier layer on the liner; and forming a through-silicon via electrode in the through-silicon via.
    Type: Application
    Filed: May 16, 2011
    Publication date: November 22, 2012
    Inventors: Yen-Liang Lu, Chun-Ling Lin, Chi-Mao Hsu, Chin-Fu Lin, Chun-Hung Chen, Tsun-Min Cheng, Meng-Hong Tsai
  • Publication number: 20120282783
    Abstract: A method for fabricating high-k dielectric layer is disclosed. The method includes the steps of: providing a substrate; and forming a plurality of high-k dielectric layers by using a plurality of reacting gases to perform a plurality of process stages on the surface of the substrate, wherein at least one of the reacting gases comprises different flow rate in the fabrication stages.
    Type: Application
    Filed: May 3, 2011
    Publication date: November 8, 2012
    Inventors: Jui-Chen Chang, Chen-Kuo Chiang, Chin-Fu Lin, Chih-Chien Liu
  • Publication number: 20120273902
    Abstract: A gate stack structure with an etch stop layer is provided. The gate stack structure is formed over a substrate. A spacer is formed on a sidewall of the gate stack structure. The gate stack structure includes a gate dielectric layer, a barrier layer, a repair layer and the etch stop layer. The gate dielectric layer is formed on the substrate. The barrier layer is formed on the gate dielectric layer. The barrier layer and an inner sidewall of the spacer collectively define a trench. The repair layer is formed on the barrier layer and an inner wall of the trench. The etch stop layer is formed on the repair layer.
    Type: Application
    Filed: April 27, 2011
    Publication date: November 1, 2012
    Applicant: UNITED MICROELECTRONICS CORP.
    Inventors: Kun-Hsien LIN, Hsin-Fu Huang, Chi-Mao Hsu, Chin-Fu Lin, Chun-Yuan Wu
  • Publication number: 20120270389
    Abstract: A method for manufacturing a metal nitride layer including the following steps is provided. Firstly, a substrate is provided. Then, a physical vapor deposition process is performed at a temperature between 210° C. and 390° C. to form a metal nitride layer on the substrate. Also, the physical vapor deposition process can be performed on a pressure between 21 mTorr and 91 mTorr. The method can be used in the manufacturing process of an interconnection structure for decreasing the film stress of the metal nitride layer. Therefore, the interconnection structure can be prevented from line distortion and film collapse.
    Type: Application
    Filed: April 20, 2011
    Publication date: October 25, 2012
    Applicant: UNITED MICROELECTRONICS CORP.
    Inventors: Chun-Ling LIN, Chin-Fu Lin, Chi-Mao Hsu
  • Publication number: 20120261770
    Abstract: A metal gate structure includes a high-K gate dielectric layer, an N-containing layer, a work function metal layer, and an N-trapping layer. The N-containing layer is positioned between the work function metal layer and the high-K gate dielectric layer. The N-trapping layer is positioned between the work function metal layer and the high-K gate dielectric layer, and the N-trapping layer contains no nitrogen or low-concentration nitrogen.
    Type: Application
    Filed: April 14, 2011
    Publication date: October 18, 2012
    Inventors: Kun-Hsien Lin, Hsin-Fu Huang, Tzung-Ying Lee, Min-Chuan Tsai, Chi-Mao Hsu, Chin-Fu Lin
  • Publication number: 20120264306
    Abstract: The present invention provides a method of forming an opening on a semiconductor substrate. First, a substrate is provided. Then a dielectric layer and a cap layer are formed on the substrate. A ratio of a thickness of the dielectric layer and a thickness of the cap layer is substantially between 15 and 1.5. Next, a patterned boron nitride layer is formed on the cap layer. Lastly, an etching process is performed by using the patterned hard mask as a mask to etch the cap layer and the dielectric layer so as to form an opening in the cap layer and the dielectric layer.
    Type: Application
    Filed: April 15, 2011
    Publication date: October 18, 2012
    Inventors: Chun-Yuan Wu, Chih-Chien Liu, Chin-Fu Lin, Po-Chun Chen
  • Publication number: 20120256275
    Abstract: A manufacturing method of a metal gate structure includes first providing a substrate having a dummy gate formed thereon. The dummy gate includes a high-K gate dielectric layer, a bottom barrier layer, a first etch stop layer and a sacrificial layer sequentially and upwardly stacked on the substrate. Then, the sacrificial layer is removed to form a gate trench with the first etch stop layer exposed on the bottom of the gate trench. After forming the gate trench, a first work function metal layer is formed in the gate trench.
    Type: Application
    Filed: April 6, 2011
    Publication date: October 11, 2012
    Inventors: Hsin-Fu Huang, Chi-Mao Hsu, Kun-Hsien Lin, Chin-Fu Lin, Tzung-Ying Lee, Min-Chuan Tsai, Yi-Wei Chen, Bin-Siang Tsai, Ted Ming-Lang Guo, Ger-Pin Lin, Yu-Ling Liang, Yen-Ming Chen, Tsai-Yu Wen
  • Publication number: 20120248507
    Abstract: A manufacturing method of a metal gate structure includes providing a substrate having at least a first metal oxide layer formed thereon, and transferring the surface of the first metal oxide layer into a second metal oxide layer. The first metal oxide layer includes a metal oxide (M1Ox) of a first metal (M1) and the second metal oxide layer includes a metal oxide ((M1M2Oy) of the first metal and a second metal (M2).
    Type: Application
    Filed: March 28, 2011
    Publication date: October 4, 2012
    Inventors: Chih-Chien Liu, Chun-Yuan Wu, Chin-Fu Lin, Teng-Chun Tsai, Chin-Cheng Chien
  • Publication number: 20120241863
    Abstract: A fin field-effect transistor structure includes a substrate, a fin channel and a high-k metal gate. The high-k metal gate is formed on the substrate and the fin channel. A process of manufacturing the fin field-effect transistor structure includes the following steps. Firstly, a polysilicon pseudo gate structure is formed on the substrate and a surface of the fin channel. By using the polysilicon pseudo gate structure as a mask, a source/drain region is formed in the fin channel. After the polysilicon pseudo gate structure is removed, a high-k dielectric layer and a metal gate layer are successively formed. Afterwards, a planarization process is performed on the substrate having the metal gate layer until the first dielectric layer is exposed, so that a high-k metal gate is produced.
    Type: Application
    Filed: March 21, 2011
    Publication date: September 27, 2012
    Applicant: UNITED MICROELECTRONICS CORP.
    Inventors: Teng-Chun TSAI, Chun-Yuan Wu, Chin-Fu Lin, Chih-Chien Liu, Chin-Cheng Chien