Patents by Inventor Yun Wu

Yun Wu 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).

  • Publication number: 20160187405
    Abstract: An electrostatic distribution measuring instrument includes a sensing module and a control module. The sensing module includes a plurality of electrostatic sensing elements electrically insulated from each other. The plurality of electrostatic sensing elements is single walled carbon nanotubes or few-walled carbon nanotubes. The control module is coupled to the sensing module and configured to measure a resistance variation ?R of the sensing module and convert the resistance variation ?R into a static electricity potential.
    Type: Application
    Filed: December 30, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160187403
    Abstract: An electrometer includes a sensing module and a control module. The sensing module includes a plurality of electrostatic sensing elements and a plurality of second electrodes. The plurality of electrostatic sensing elements are single walled carbon nanotubes or few-walled carbon nanotubes. The plurality of electrostatic sensing elements and the plurality of second electrodes are alternately arranged in a series connection. The control module is coupled to the two ends of the series connection and configured to measure a resistance variation ?R of the series connection and convert the resistance variation ?R into a static electricity potential.
    Type: Application
    Filed: December 30, 2015
    Publication date: June 30, 2016
    Inventors: Xin-He Wang, Dong-Qi Li, Jiang-Tao Wang, Wen-Yun Wu, Yu-Jun He, Peng Liu, Qing-Yu Zhao, Kai-Li Jiang, Shou-Shan Fan
  • Publication number: 20160188051
    Abstract: An electrostatic sensing device comprises an electrostatic sensing module and a control unit electrically connected to the electrostatic sensing module. The electrostatic sensing module comprises a first electrostatic sensing element comprising opposite ends, and two first electrodes. The two first electrodes are separately located on and electrically connected to the two opposite ends of the first electrostatic sensing element. The first electrostatic sensing element is a single walled carbon nanotube or a few-walled carbon nanotube. The control unit electrically is configured to apply a direct voltage to the first electrostatic sensing element and measure a current/resistance of the first electrostatic sensing element.
    Type: Application
    Filed: December 29, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160188043
    Abstract: A touch and hover sensing device includes a sensing module, a hover sensing unit, a touch sensing unit, and a switching control unit switching between a hover mode and a touch mode. The sensing module includes a plurality of first electrostatic sensing elements and a plurality of second electrostatic sensing elements electrically insulated from each other and located on a surface of an insulating substrate. The plurality of first electrostatic sensing elements is spaced from each other and extends along a first direction, and the plurality of second electrostatic sensing elements is spaced from each other and extends along a second direction. Each first electrostatic sensing element and each second electrostatic sensing element includes a single walled carbon nanotube or few-walled carbon nanotube.
    Type: Application
    Filed: December 27, 2015
    Publication date: June 30, 2016
    Inventors: Xin-He Wang, Dong-Qi Li, Jiang-Tao Wang, Wen-Yun Wu, Yu-Jun He, Peng Liu, Qing-Yu Zhao, Kai-Li Jiang, Shou-Shan Fan
  • Publication number: 20160188095
    Abstract: A hover controlling device includes a sensing unit and a hover control unit. The sensing unit includes a plurality of first electrostatic sensing elements, a plurality of first electrodes, a plurality of second electrostatic sensing elements, and a plurality of third electrodes located on a substrate. Each first electrostatic sensing element and each second electrostatic sensing element include a single walled carbon nanotube or a few-walled carbon nanotube. The resistances of the plurality of first electrostatic sensing elements and the plurality of second electrostatic sensing elements are changed in process of a sensed object with electrostatic near, but does not touch the plurality of first electrostatic sensing elements and the plurality of second electrostatic sensing elements. The hover control unit is electrically connected to the plurality of first electrostatic sensing elements and the plurality of second electrostatic sensing elements.
    Type: Application
    Filed: December 27, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160188094
    Abstract: A touch and hover sensing device includes a hover sensing module is located on a first surface of a substrate, the hover sensing module includes a plurality of first electrostatic sensing elements and a plurality of second electrostatic sensing elements electrically insulated from each other. Each of the plurality of first electrostatic sensing elements and each of the plurality of second electrostatic sensing elements include a single walled carbon nanotube or few-walled carbon nanotube. A touch sensing module is located on a second surface of the substrate. The hover sensing module and the touch sensing module are connected to a control chip, the control chip controls the hover sensing module and the touch sensing module simultaneously working or working separately, to sense a position coordinate of the sensed object.
    Type: Application
    Filed: December 27, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160188055
    Abstract: An electrostatic sensing device comprises an electrostatic sensing module and a control unit electrically connected to the electrostatic sensing module. The electrostatic sensing module comprises a first electrostatic sensing element comprising opposite ends, and two first electrodes. The two first electrodes are separately located on and electrically connected to the two opposite ends of the first electrostatic sensing element. The first electrostatic sensing element is a single walled carbon nanotube or a few-walled carbon nanotube. The control unit electrically is configured to apply a direct voltage to the first electrostatic sensing element and measure a current/resistance of the first electrostatic sensing element.
    Type: Application
    Filed: December 30, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160188096
    Abstract: A hover controlling device includes a sensing unit and a hover control unit. The sensing unit includes a plurality of first electrostatic sensing elements, a plurality of first electrodes, a plurality of second electrostatic sensing elements, and a plurality of third electrodes located on a substrate. Each first electrostatic sensing element and each second electrostatic sensing element include a single walled carbon nanotube or a few-walled carbon nanotube. The resistances of the plurality of first electrostatic sensing elements and the plurality of second electrostatic sensing elements are changed in process of a sensed object with electrostatic near, but does not touch the plurality of first electrostatic sensing elements and the plurality of second electrostatic sensing elements. The hover control unit is electrically connected to the plurality of first electrostatic sensing elements and the plurality of second electrostatic sensing elements.
    Type: Application
    Filed: December 27, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160188052
    Abstract: An electrostatic sensing device comprises an electrostatic sensing module and a control unit electrically connected to the electrostatic sensing module. The electrostatic sensing module comprises a first electrostatic sensing element comprising opposite ends, and two first electrodes. The two first electrodes are separately located on and electrically connected to the two opposite ends of the first electrostatic sensing element. The first electrostatic sensing element is one-dimensional semiconducting linear structure with a diameter less than 100 nanometers. The control unit electrically is configured to apply a direct voltage to the first electrostatic sensing element and measure a current/resistance of the first electrostatic sensing element.
    Type: Application
    Filed: December 29, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160187404
    Abstract: An electrometer includes a sensing module and a control module. The sensing module includes an electrostatic sensing element. The electrostatic sensing element includes two opposite ends. Each end of the electrostatic sensing element is electrically connected to the control module. When an object with electrostatic charge is near but does not touch the electrostatic sensing element, the resistance of the electrostatic sensing element can be changed. The control module electrically connect to the electrostatic sensing element, the control module measures the resistance variation ?R of the electrostatic sensing element and converts the resistance variation ?R into the static electricity potential.
    Type: Application
    Filed: December 30, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160188053
    Abstract: An electrostatic sensing method is provided. An electrostatic sensing device comprising an electrostatic sensing module comprising a first electrostatic sensing element, and a control unit electrically connected to the electrostatic sensing module is provided. The first electrostatic sensing element is one-dimensional semiconducting linear structure. A direct voltage is applied to the first electrostatic sensing element. A sensed object with electrostatic charge is moved to the electrostatic sensing device in a distance near but not touching the first electrostatic sensing element. A resistance changed value of the first electrostatic sensing element is measured.
    Type: Application
    Filed: December 30, 2015
    Publication date: June 30, 2016
    Inventors: XIN-HE WANG, DONG-QI LI, JIANG-TAO WANG, WEN-YUN WU, YU-JUN HE, PENG LIU, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160092813
    Abstract: Access is obtained to raw historic information technology migration data, which data is transformed in accordance with a classification scheme to obtain classified key historic information technology migration data. A statistical model with conditional distributions of the key historic information technology migration data is built. Prior to a new information technology migration project, access is obtained to incomplete data characterizing the new information technology migration project. The statistical model is used to derive data missing from the incomplete data characterizing the new information technology migration project, to obtain derived data. At least one of a migration plan and an estimate for the new information technology migration project is created based on the incomplete data and the derived data.
    Type: Application
    Filed: September 30, 2014
    Publication date: March 31, 2016
    Inventors: John K. Baker, Yun-Wu Huang, Matthew A. Markley, Venkata Vinay Parisa, Birgit M. Pfitzmann
  • Publication number: 20160086643
    Abstract: A memory device comprises a plurality of sectors and a driving circuit comprising a global word line driver and a first local word line driver. The global word line driver applies an erasing voltage to a selected sector of the sectors via a global word line. The first local word line driver, coupled to the global word line, drives a first local word line of the selected sector with a biasing voltage, so that the first local word line has a first voltage level corresponding to a non-erased state.
    Type: Application
    Filed: September 24, 2014
    Publication date: March 24, 2016
    Inventors: Nai-Ping Kuo, Cai-Yun Wu
  • Publication number: 20160061733
    Abstract: A method for assigning chirality of carbon nanotube is provided. Firstly, carbon nanotube sample, an optical microscope with a liquid immersion objective and a liquid are provided. Secondly, the carbon nanotube sample is immersed in the liquid. Thirdly, the carbon nanotube sample is illuminated by an incident beam to generate resonance Rayleigh scattering. Forthly, the liquid immersion objective is immersed into the liquid to get a resonance Rayleigh scattering (RRS) image of the carbon nanotube sample. Fifthly, spectra of the carbon nanotube sample are measured to obtain chirality of the carbon nanotube sample.
    Type: Application
    Filed: August 28, 2015
    Publication date: March 3, 2016
    Inventors: WEN-YUN WU, JING-YING YUE, XIAO-YANG LIN, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160061734
    Abstract: A method for imaging one dimension nanomaterials is provided. Firstly, one dimension nanomaterials sample, an optical microscope with a liquid immersion objective and a liquid are provided. Secondly, the one dimensional nanomaterials sample is immersed in the liquid. Thirdly, the one dimensional nanomaterials sample is illuminated by an incident beam to generate resonance Rayleigh scattering. Forthly, the liquid immersion objective is immersed into the liquid to get a resonance Rayleigh scattering (RRS) image of the one dimensional nanomaterials sample. Fifthly, spectra of the one dimensional nanomaterials sample are measured to obtain chirality of the one dimensional nanomaterials sample.
    Type: Application
    Filed: August 28, 2015
    Publication date: March 3, 2016
    Inventors: WEN-YUN WU, JING-YING YUE, XIAO-YANG LIN, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160061718
    Abstract: A method for assigning chirality of carbon nanotube is provided. Firstly, carbon nanotube sample, an optical microscope with a liquid immersion objective and a liquid are provided. Secondly, the carbon nanotube sample is immersed in the liquid. Thirdly, the carbon nanotube sample is illuminated by an incident beam to generate resonance Rayleigh scattering. Forthly, the liquid immersion objective is immersed into the liquid to get a resonance Rayleigh scattering (RRS) image of the carbon nanotube sample. Fifthly, spectra of the carbon nanotube sample are measured to obtain chirality of the carbon nanotube sample.
    Type: Application
    Filed: August 28, 2015
    Publication date: March 3, 2016
    Inventors: WEN-YUN WU, JING-YING YUE, XIAO-YANG LIN, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160061664
    Abstract: A method for imaging one dimension nanomaterials is provided. Firstly, one dimension nanomaterials sample, an optical microscope with a liquid immersion objective and a liquid are provided. Secondly, the one dimensional nanomaterials sample is immersed in the liquid. Thirdly, the one dimensional nanomaterials sample is illuminated by an incident beam to generate resonance Rayleigh scattering. Forthly, the liquid immersion objective is immersed into the liquid to get a resonance Rayleigh scattering (RRS) image of the one dimensional nanomaterials sample. Fifthly, spectra of the one dimensional nanomaterials sample are measured to obtain chirality of the one dimensional nanomaterials sample.
    Type: Application
    Filed: August 28, 2015
    Publication date: March 3, 2016
    Inventors: WEN-YUN WU, JING-YING YUE, XIAO-YANG LIN, QING-YU ZHAO, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20160038989
    Abstract: A hybrid stamping system for forming a work-piece includes a stamping press. The press includes first and second dies that have respective first and second die bases formed from a first material. The system also includes first and second inlays. Each inlay is formed from a second material and has opposing die and work-piece sides. The second material hardness is greater than the first material hardness. The die side of the first inlay is cast into the first base and the work-piece side of the first inlay is contoured to form one side of the work-piece. The die side of the second inlay is cast into the second base and the work-piece side of the second inlay is contoured to form another side of the work-piece. The first and second dies are mounted in the press opposite one another to form the work-piece between the first and second inlays.
    Type: Application
    Filed: August 8, 2014
    Publication date: February 11, 2016
    Inventors: Dai-Yun Wu, Jorge F. Arinez
  • Patent number: 9230828
    Abstract: A device includes a semiconductor fin over a substrate, a gate dielectric on sidewalls of the semiconductor fin, and a gate electrode over the gate dielectric. A source/drain region is on a side of the gate electrode. A dislocation plane is in the source/drain region.
    Type: Grant
    Filed: August 12, 2014
    Date of Patent: January 5, 2016
    Assignee: Taiwan Semiconductor Manufacturing Company, Ltd.
    Inventors: Zhiqiang Wu, Wen-Hsing Hsieh, Hua Feng Chen, Ting-Yun Wu, Carlos H. Diaz, Tzer-Min Shen, Ya-Yun Cheng
  • Publication number: 20150366169
    Abstract: A honeybee behavior monitoring system, including a honeybee behavior monitoring device positioned in a beehive for counting and recording the in-and-out activity of honeybees near a beehive, wherein the honeybee behavior monitoring device includes a first sensing unit and a second sensing unit for generating sensing signals; a counting unit for recording and determining whether honeybees are entering or departing from the beehive; a transmission unit for transmitting the in-and-out activity count to an external device, wherein each honeybee behavior monitoring device transfers data therebetween via a wireless sensing network, and finally data is transmitted to a rear-end server for storage and subsequent analysis of honeybee behaviors according to the status of counting and recording in each honeybee behavior monitoring device and ambient beehive environmental data or meteorological data, thereby providing accurate in-and-out activity counts to facilitate honeybee behavior studies.
    Type: Application
    Filed: October 29, 2014
    Publication date: December 24, 2015
    Inventors: Joe-Air Jiang, En-Cheng Yang, Cheng-Long Chuang, Chi-Hui Chen, Chien-Hao Wang, Yu-Kai Huang, Min-Sheng Liao, Jing-Yun Wu