Patents by Inventor Kan Yang

Kan Yang 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: 20150001397
    Abstract: An improved scintillation detector capable of withstanding harsh operating environments includes a halide scintillator in a sealed casing having an atmosphere with an oxygen content not greater than about 100 ppb and an oxygen scavenger in the atmosphere within the sealed casing.
    Type: Application
    Filed: June 27, 2014
    Publication date: January 1, 2015
    Inventors: Kan Yang, Peter R. Menge
  • Patent number: 8912498
    Abstract: A halide scintillator material is disclosed. The material is single-crystalline and has a composition of the formula A3MBr6(1-x)Cl6x (such as Cs3CeBr6(1-x)Cl6x) or AM2Br7(1-x)Cl7x (such as CsCe2Br7(1-x)Cl7x), 0?x?1, wherein A consists essentially of Li, Na K, Rb, Cs or any combination thereof, and M consists essentially of Ce, Sc, Y, La, Lu, Gd, Pr, Tb, Yb, Nd or any combination thereof. Furthermore, a method of making halide scintillator materials of the above-mentioned compositions is disclosed. In one example, high-purity starting halides (such as CsBr, CeBr3, CsCl and CeCl3) are mixed and melted to synthesize a compound of the desired composition of the scintillator material. A single crystal of the scintillator material is then grown from the synthesized compound by the Bridgman method. The disclosed scintillator materials are suitable for making scintillation detectors used in applications such as medical imaging and homeland security.
    Type: Grant
    Filed: May 2, 2011
    Date of Patent: December 16, 2014
    Assignees: University of Tennessee Research Foundation, Siemens Medical Solutions USA, Inc.
    Inventors: Kan Yang, Mariya Zhuravleva, Charles L. Melcher, Piotr Szupryczynski
  • Publication number: 20140363674
    Abstract: A halide scintillator material is disclosed where the halide may comprise chloride, bromide or iodide. The material is single-crystalline and has a composition of the general formula ABX3 where A is an alkali, B is an alkali earth and X is a halide which general composition was investigated. In particular, crystals of the formula ACa1-yEuyI3 where A=K, Rb and Cs were formed as well as crystals of the formula CsA1-yEuyX3 (where A=Ca, Sr, Ba, or a combination thereof and X=Cl. Br or I or a combination thereof) with divalent Europium doping where 0?z?1, and more particularly Eu doping has been studied at one to ten mol %. The disclosed scintillator materials are suitable for making scintillation detectors used in applications such as medical imaging and homeland security.
    Type: Application
    Filed: June 25, 2014
    Publication date: December 11, 2014
    Applicant: University of Tennessee Research Foundation
    Inventors: Mariya Zhuravleva, Kan Yang
  • Publication number: 20140286737
    Abstract: A data storage library comprising a stack of storage modules, each storage module comprising an array of storage slots, the data storage library comprising: a plurality of transmission robots, each transmission robot comprising a tray for transporting a data storage medium to and from a storage slot; and a transmission apparatus configured for effecting movement of at least one of the plurality of transmission robots between two adjacent storage modules in the data storage library.
    Type: Application
    Filed: June 3, 2014
    Publication date: September 25, 2014
    Inventors: Kan YANG, Hongli BAI, Chin Ting TAN, Sheau Yeng WEI, Yeow Seng VOON
  • Patent number: 8815119
    Abstract: A halide scintillator material is disclosed where the halide may comprise chloride, bromide or iodide. The material is single-crystalline and has a composition of the general formula ABX3 where A is an alkali, B is an alkali earth and X is a halide which general composition was investigated. In particular, crystals of the formula ACa1-yEuyI3 where A=K, Rb and Cs were formed as well as crystals of the formula CsA1-yEuyX3 (where A=Ca, Sr, Ba, or a combination thereof and X=Cl, Br or I or a combination thereof) with divalent Europium doping where 0?y?1, and more particularly Eu doping has been studied at one to ten mol %. The disclosed scintillator materials are suitable for making scintillation detectors used in applications such as medical imaging and homeland security.
    Type: Grant
    Filed: January 17, 2012
    Date of Patent: August 26, 2014
    Assignee: University of Tennessee Research Foundation
    Inventors: Mariya Zhuravleva, Kan Yang
  • Patent number: 8771558
    Abstract: A method of manufacturing an anti-counterfeit ink is provided. A tungsten oxide nanowire is provided. A hydrophilic treatment is performed to the tungsten oxide nanowire to form a tungsten oxide nanowire with hydrophilicity. The tungsten oxide nanowire with hydrophilicity and an ink are mixed to form an anti-counterfeit ink.
    Type: Grant
    Filed: December 9, 2010
    Date of Patent: July 8, 2014
    Assignee: National Taiwan University of Science and Technology
    Inventors: Borh-Ran Huang, Tzu-Ching Lin, Ying-Kan Yang
  • Publication number: 20140131564
    Abstract: A radiation detection apparatus can include a scintillator, a photosensor optically coupled to the scintillator, and a control module electrically coupled to the photosensor. The control module can be configured to receive a pulse from the photosensor and identify a cause of noise corresponding to the pulse. Such information can be useful in determining failure modes and potentially predict future failures of radiation detection apparatuses. In another embodiment, the wavelet discrimination can be used to determine whether or not the pulse corresponds to a scintillation pulse, and potentially to identify a type of radiation or a radiation source. The technique is robust to work over a variety of temperatures, and particularly, at temperatures significantly higher than room temperature.
    Type: Application
    Filed: November 8, 2013
    Publication date: May 15, 2014
    Applicant: Saint-Gobain Ceramics & Plastics, Inc.
    Inventors: Artan Duraj, Peter R. Menge, Kan Yang
  • Publication number: 20140110588
    Abstract: The present disclosure discloses, in one arrangement, a single crystalline iodide scintillator material having a composition of the formula AM1-xEuxI3, A3M1-xEuxI5 and AM2(1-x)Eu2xI5, wherein A consists essentially of any alkali metal element (such as Li, Na K, Rb, Cs) or any combination thereof, M consists essentially of Sr, Ca, Ba or any combination thereof, and 0?x?1. In another arrangement, the above single crystalline iodide scintillator material can be made by first synthesizing a compound of the above composition and then forming a single crystal from the synthesized compound by, for example, the Vertical Gradient Freeze method. Applications of the iodide scintillator materials include radiation detectors and their use in medical and security imaging.
    Type: Application
    Filed: May 2, 2011
    Publication date: April 24, 2014
    Inventors: Kan Yang, Mariya Zhuravleva, Charles L. Melcher, Piotr Szupryczynski
  • Patent number: 8692203
    Abstract: The present disclosure discloses, in one arrangement, a single crystalline iodide scintillator material having a composition of the formula AM1?xEuxI3, A3M1?xEuxI5 and AM2(1?x)Eu2xI5, wherein A consists essentially of any alkali metal element (such as Li, Na K, Rb, Cs) or any combination thereof, M consists essentially of Sr, Ca, Ba or any combination thereof, and 0?x?1. In another arrangement, the above single crystalline iodide scintillator material can be made by first synthesizing a compound of the above composition and then forming a single crystal from the synthesized compound by, for example, the Vertical Gradient Freeze method. Applications of the iodide scintillator materials include radiation detectors and their use in medical and security imaging.
    Type: Grant
    Filed: May 2, 2011
    Date of Patent: April 8, 2014
    Assignees: Siemens Medical Solutions USA, Inc., University of Tennessee Research Foundation
    Inventors: Kan Yang, Mariya Zhuravleva, Charles L. Melcher, Piotr Szupryczynski
  • Publication number: 20140091227
    Abstract: A neutron sensor includes neutron-sensing particles and a scintillator coating surrounding the neutron-sensing particles. In an embodiment, the neutron-sensing particles include 6LiF particles, the scintillator coating includes ZnS, or both. In another embodiment, the scintillator coating can coat more than one neutron-sensing particle. In a further embodiment, the scintillator coating is formed on neutron-sensing particles using precipitation techniques or fluidized bed processing.
    Type: Application
    Filed: September 26, 2013
    Publication date: April 3, 2014
    Inventors: Kan Yang, Peter R. Menge, Brian C. LaCourse
  • Patent number: 8598530
    Abstract: The present disclosure discloses, in one arrangement, a single crystalline chloride scintillator material having a composition of the formula A3MCl6, wherein A consists essentially of Cs and M consists essentially of Ce and Gd. In another arrangement, a chloride scintillator material is single-crystalline and has a composition of the formula AM2Cl7, wherein A consists essentially of Li, Na K, Rb, Cs or any combination thereof, and M consists essentially of Ce, Sc, Y, La, Lu, Gd, Pr, Tb, Yb, Nd or any combination thereof. Specific examples of these scintillator materials include single-crystalline Ce-doped KGd2Cl7 (KGd2(1-x)Ce2xCl7) and Ce-doped CsGd2Cl7(CsGd2(1-x)Ce2xCl7).
    Type: Grant
    Filed: May 2, 2011
    Date of Patent: December 3, 2013
    Assignees: Siemens Medical Solutions USA, Inc., University of Tennessee Research Foundation
    Inventors: Mariya Zhuravleva, Kan Yang, Charles L. Melcher, Piotr Szupryczynski
  • Publication number: 20120273726
    Abstract: A halide scintillator material is disclosed where the halide may comprise chloride, bromide or iodide. The material is single-crystalline and has a composition of the general formula ABX3 where A is an alkali, B is an alkali earth and X is a halide which general composition was investigated. In particular, crystals of the formula ACa1-yEuyI3 where A=K, Rb and Cs were formed as well as crystals of the formula CsA1-yEuyX3 (where A=Ca, Sr, Ba, or a combination thereof and X?Cl, Br or I or a combination thereof) with divalent Europium doping where 0?y?1, and more particularly Eu doping has been studied at one to ten mol %. The disclosed scintillator materials are suitable for making scintillation detectors used in applications such as medical imaging and homeland security.
    Type: Application
    Filed: January 17, 2012
    Publication date: November 1, 2012
    Applicant: UNIVERSITY OF TENNESSEE RESEARCH FOUNDATION
    Inventors: Mariya Zhuravleva, Kan Yang
  • Publication number: 20120061950
    Abstract: A method of manufacturing an anti-counterfeit ink is provided. A tungsten oxide nanowire is provided. A hydrophilic treatment is performed to the tungsten oxide nanowire to form a tungsten oxide nanowire with hydrophilicity. The tungsten oxide nanowire with hydrophilicity and an ink are mixed to form an anti-counterfeit ink.
    Type: Application
    Filed: December 9, 2010
    Publication date: March 15, 2012
    Applicant: National Taiwan University of Science and Technology
    Inventors: Borh-Ran Huang, Tzu-Ching Lin, Ying-Kan Yang
  • Publication number: 20110272585
    Abstract: A halide scintillator material is disclosed. The material is single-crystalline and has a composition of the formula A3MBr6(1-x)Cl6x (such as Cs3CeBr6(1-x)Cl6x) or AM2Br7(1-x)Cl7x (such as CsCe2Br7(1-x)Cl7x), 0?x?1, wherein A consists essentially of Li, Na K, Rb, Cs or any combination thereof, and M consists essentially of Ce, Sc, Y, La, Lu, Gd, Pr, Tb, Yb, Nd or any combination thereof. Furthermore, a method of making halide scintillator materials of the above-mentioned compositions is disclosed. In one example, high-purity starting halides (such as CsBr, CeBr3, CsCl and CeCl3) are mixed and melted to synthesize a compound of the desired composition of the scintillator material. A single crystal of the scintillator material is then grown from the synthesized compound by the Bridgman method. The disclosed scintillator materials are suitable for making scintillation detectors used in applications such as medical imaging and homeland security.
    Type: Application
    Filed: May 2, 2011
    Publication date: November 10, 2011
    Inventors: Kan Yang, Mariya Zhuravleva, Charles L. Melcher, Piotr Szupryczynski
  • Publication number: 20110272586
    Abstract: The present disclosure discloses, in one arrangement, a single crystalline chloride scintillator material having a composition of the formula A3MCl6, wherein A consists essentially of Li, Na K, Rb, Cs or any combination thereof, and M consists essentially of Ce, Sc, Y, La, Lu, Gd, Pr, Tb, Yb, Nd or any combination thereof. In another arrangement, a chloride scintillator material is single-crystalline and has a composition of the formula AM2Cl7, wherein A consists essentially of Li, Na K, Rb, Cs or any combination thereof, and M consists essentially of Ce, Sc, Y, La, Lu, Gd, Pr, Tb, Yb, Nd or any combination thereof. Specific examples of these scintillator materials include single-crystalline Cs3CeCl6, CsCe2Cl7, Ce-doped KGd2Cl7 (KGd2(1-x)Ce2xCl7) and Ce-doped CsGd2Cl7 (CsGd2(1-x)Ce2xCl7). In a further arrangement, the Bridgman method can be used to grown single crystals of the chloride scintillator materials compounds synthesized from starting chlorides.
    Type: Application
    Filed: May 2, 2011
    Publication date: November 10, 2011
    Inventors: Mariya Zhuravleva, Kan Yang, Charles L. Melcher, Piotr Szupryczynski