Patents by Inventor Julien Lejay

Julien Lejay 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: 10598800
    Abstract: The present disclosure relates to a process for fabricating a crystalline scintillator material with a structure of elpasolite type of theoretical composition A2BC(1-y)MyX(6-y) wherein: A is chosen from among Cs, Rb, K, Na, B is chosen from among Li, K, Na, C is chosen from among the rare earths, Al, Ga, M is chosen from among the alkaline earths, X is chosen from among F, Cl, Br, I, y representing the atomic fraction of substitution of C by M and being in the range extending from 0 to 0.05, comprising its crystallization by cooling from a melt bath comprising r moles of A and s moles of B, the melt bath in contact with the material containing A and B in such a way that 2s/r is above 1. The process shows an improved fabrication yield. Moreover, the crystals obtained can have compositions closer to stoichiometry and have improved scintillation properties.
    Type: Grant
    Filed: November 30, 2018
    Date of Patent: March 24, 2020
    Assignee: Saint-Gobain Cristaux et Detecteurs
    Inventors: Vladimir Ouspenski, Samuel Blahuta, Raphaël Huchet, Julien Lejay
  • Patent number: 10180503
    Abstract: The present disclosure relates to a process for fabricating a crystalline scintillator material with a structure of elpasolite type of theoretical composition A2BC(1-y)MyX(6-y) wherein: A is chosen from among Cs, Rb, K, Na, B is chosen from among Li, K, Na, C is chosen from among the rare earths, Al, Ga, M is chosen from among the alkaline earths, X is chosen from among F, Cl, Br, I, y representing the atomic fraction of substitution of C by M and being in the range extending from 0 to 0.05, comprising its crystallization by cooling from a melt bath comprising r moles of A and s moles of B, the melt bath in contact with the material containing A and B in such a way that 2s/r is above 1. The process shows an improved fabrication yield. Moreover, the crystals obtained can have compositions closer to stoichiometry and have improved scintillation properties.
    Type: Grant
    Filed: April 23, 2018
    Date of Patent: January 15, 2019
    Assignee: Saint-Gobain Cristaux et Detecteurs
    Inventors: Vladimir Ouspenski, Samuel Blahuta, Raphaël Huchet, Julien Lejay
  • Patent number: 10053623
    Abstract: A scintillator can include a monocrystalline compound having a general formula Na(1-y)LiyX, where 0<y<1 and X is at least one halogen or any combination of halogens. In an embodiment, the scintillator can have a Pulse Shape Discrimination Figure of Merit of at least 1 at a temperature of 25° C., at a temperature of 150° C., or both.
    Type: Grant
    Filed: March 30, 2017
    Date of Patent: August 21, 2018
    Assignees: SAINT-GOBAIN CERAMICS & PLASTICS, INC., SAINT-GOBAIN CRISTAUX & DETECTEURS
    Inventors: Kan Yang, Julien LeJay, Samuel Blahuta, Vladimir Ouspenski
  • Patent number: 9983318
    Abstract: The present disclosure relates to a process for fabricating a crystalline scintillator material with a structure of elpasolite type of theoretical composition A2BC(1-y)MyX(6-y) wherein: A is chosen from among Cs, Rb, K, Na; B is chosen from among Li, K, Na; C is chosen from among the rare earths, Al, Ga; M is chosen from among the alkaline earths, X is chosen from among F, Cl, Br, I; y representing the atomic fraction of substitution of C by M and being in the range extending from 0 to 0.05, comprising its crystallization by cooling from a melt bath comprising r moles of A and s moles of B, the melt bath in contact with the material containing A and B in such a way that 2s/r is above 1. The process shows an improved fabrication yield. Moreover, the crystals obtained can have compositions closer to stoichiometry and have improved scintillation properties.
    Type: Grant
    Filed: January 27, 2017
    Date of Patent: May 29, 2018
    Assignee: Saint-Gobain Cristaux et Detecteurs
    Inventors: Vladimir Ouspenski, Samuel Blahuta, Raphaël Huchet, Julien Lejay
  • Publication number: 20170283696
    Abstract: A scintillator can include a monocrystalline compound having a general formula Na(1-y)LiyX, where 0<y<1 and X is at least one halogen or any combination of halogens. In an embodiment, the scintillator can have a Pulse Shape Discrimination Figure of Merit of at least 1 at a temperature of 25° C., at a temperature of 150° C., or both.
    Type: Application
    Filed: March 30, 2017
    Publication date: October 5, 2017
    Inventors: Kan YANG, Julien Lejay, Samuel Blahuta, Vladimir Ouspenski
  • Publication number: 20170276825
    Abstract: A scintillator can include an elpasolite scintillator compound. The scintillator can be doped with a Group 2 element, and may also include an activator. The scintillator has an improved core valence luminescence at room temperature as compared to a corresponding elpasolite scintillator compound without the Group 2 dopant. The elpasolite scintillator compound can have significant core valance luminescence at a temperature higher than 125° C. In a particular embodiment, the elpasolite scintillator compound can include Cl and may or may not also include another halide, such as Br or I. The scintillator can be part of an apparatus that detects gamma radiation and neutrons and may allow a relatively simpler pulse discrimination technique to be used to a higher temperature, such as 125° C. to 150° C. before a relatively more complex pulse discrimination technique would be used.
    Type: Application
    Filed: June 9, 2017
    Publication date: September 28, 2017
    Inventors: Kan Yang, Peter R. Menge, Vladimir Ouspenski, Julien Lejay
  • Patent number: 9733386
    Abstract: A scintillator can include an elpasolite scintillator compound. The scintillator can be doped with a Group 2 element, and may also include an activator. The scintillator has an improved core valence luminescence at room temperature as compared to a corresponding elpasolite scintillator compound without the Group 2 dopant. The elpasolite scintillator compound can have significant core valance luminescence at a temperature higher than 125° C. In a particular embodiment, the elpasolite scintillator compound can include Cl and may or may not also include another halide, such as Br or I. The scintillator can be part of an apparatus that detects gamma radiation and neutrons and may allow a relatively simpler pulse discrimination technique to be used to a higher temperature, such as 125° C. to 150° C. before a relatively more complex pulse discrimination technique would be used.
    Type: Grant
    Filed: October 16, 2015
    Date of Patent: August 15, 2017
    Assignee: SAINT-GOBAIN CERAMICS & PLASTICS, INC.
    Inventors: Kan Yang, Peter R. Menge, Vladimir Ouspenski, Julien Lejay
  • Patent number: 9599727
    Abstract: A process for fabricating a crystalline scintillator material with an elpasolite structure that has a theoretical composition of A2BC(1-y)MyX(6-y) can include conducting crystallization by cooling from a melt bath including r moles of A and s moles of B. A is chosen from Cs, Rb, K, and Na. B is chosen from Li, K, and Na. C is chosen from athe rare earth elements, Al, and Ga. M is chosen from the alkaline earth elements. X is chosen from F, Cl, Br, and I, and y represents the atomic fraction of substitution of C by M and is in the range extending from 0 to 0.05. The melt bath can be in contact with the material containing A and B in such a way that 2s/r is above 1. The process shows an improved fabrication yield. The crystals formed therefrom can have improved scintillation properties.
    Type: Grant
    Filed: October 9, 2015
    Date of Patent: March 21, 2017
    Assignee: SAINT-GOBAIN CRISTAUX ET DETECTEURS
    Inventors: Vladimir Ouspenski, Samuel Blahuta, Raphael Huchet, Julien Lejay
  • Publication number: 20160124111
    Abstract: A scintillator can include an elpasolite scintillator compound. The scintillator can be doped with a Group 2 element, and may also include an activator. The scintillator has an improved core valence luminescence at room temperature as compared to a corresponding elpasolite scintillator compound without the Group 2 dopant. The elpasolite scintillator compound can have significant core valance luminescence at a temperature higher than 125° C. In a particular embodiment, the elpasolite scintillator compound can include Cl and may or may not also include another halide, such as Br or I. The scintillator can be part of an apparatus that detects gamma radiation and neutrons and may allow a relatively simpler pulse discrimination technique to be used to a higher temperature, such as 125° C. to 150° C. before a relatively more complex pulse discrimination technique would be used.
    Type: Application
    Filed: October 16, 2015
    Publication date: May 5, 2016
    Inventors: Kan YANG, Peter R. Menge, Vladimir Ouspenski, Julien Lejay
  • Publication number: 20150115144
    Abstract: In an embodiment, scintillator can have a Figure of Merit of 0.4 at a temperature greater than 120° C., a Figure of Merit of at least 0.05 at a temperature of at least 160° C., or both. In another embodiment, a scintillator can include a Br-containing or an I-containing elpasolite. Either scintillator can be used in a radiation detection apparatus that include a photosensor and a radiation detection apparatus. Such an apparatus can be used to detect and discriminate two different types of radiation over a wide range of temperatures. The radiation detection apparatus can be useful in drilling, well logging, or as a portal detector.
    Type: Application
    Filed: October 15, 2014
    Publication date: April 30, 2015
    Inventors: Kan Yang, Peter R. Menge, Julien Lejay, Vladimir Ouspenski