Solid-state neutron detector
07-12-2021 дата публикации
Номер:
US0011195968B2
Автор: Hongxing Jiang, Jingyu Lin, JING LI, Avisek Maity, Sam Grenadier, Jiang Hongxing, LIN JINGYU, LI JING, MAITY AVISEK, GRENADIER SAM, Jiang, Hongxing, Lin, Jingyu, LI, JING, Maity, Avisek, Grenadier, Sam
Принадлежит: Texas Tech University System, UNIV TEXAS TECH SYSTEM
Контакты:
Номер заявки: 42-77-1689
Дата заявки: 10-06-2020









CPC - классификация
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GG0G01G01TG01T3G01T3/G01T3/0G01T3/08HH0H01H01LH01L3H01L31H01L31/H01L31/0H01L31/02H01L31/022H01L31/0224H01L31/03H01L31/030H01L31/0304H01L31/036H01L31/1H01L31/11H01L31/110H01L31/1105H01L31/115H01L31/18Цитирование НПИ
Ahmed, K. et al., “Solid-state neutron detectors based on thickness scalable hexagonal boron nitride” Appl. Phys. Lett. 110, 023503 Oct. 11, 2016.Bellinger, S. L. et al., “Improved High Efficiency Stacked Microstructured Neutron Detectors Backfilled With Nanoparticle 6LiF” IEEE Transactions on Nuclear Science, vol. 59, No. 1, Feb. 2012.
Bellinger, Steven L. et al. “High-efficiency microstructured semiconductor neutron detectors that are arrayed, dual-integrated, and stacked” Applied Radiation and Isotopes 70 (2012) 1121-1124.
Cao, X. K. et al. “Two-dimensional excitons in three-dimensional hexagonal boron nitride” Appl. Phys. Lett. 103, 191106 (2013); doi: 10.1063/1.4829026.
Caruso, A. N. “The physics of solid-state neutron detector materials and geometries” J. Phys.: Condens. Matter 22 (2010)443201 (32pp).
Conway, Adam M. et al. “Numerical Simulations of Carrier Transport in Pillar Structured Solid State Thermal Neutron Detector” ISDRS 2007, Dec. 12-14, 2007, College Park, MD, USA, 2 pp.
Dahal, Rajendra et al. “Anisotropic charge carrier transport in free-standing hexagonal boron nitride thin films” Applied Physics Express 9, 065801 (2016) 4 pages.
Doan, T.C. et al. “Growth and device processing of hexagonal boron nitride epilayers for thermal neutron and deep ultraviolet detectors” AIP Advances 6, 075213 (2016); doi: 10.1063/1.4959595.
Doan, T.C. et al. “Hexagonal boron nitride thin film thermal neutron detectors with high energy resolution of there action products” NuclearInstrumentsandMethodsinPhysicsResearchA783(2015)121-127.
Huang, Kuan-Chih et al. “Scalable large-area solid-state neutron detector with continuous p-n junction and extremely low leakage current” Nuclear Instruments and Methods in Physics Research A 763 (2014) 260-265.
Jun, I. et al. “Neutron background environment measured by the Mars Science Laboratory's Dynamic Albedo of Neutrons instrument during the first 100 sols” Journal of Geophysical Research: Planets, vol. 118, 2400-2412, doi: 10.1002/2013JE004510, 2013.
Li, J. et al. “Hexagonal boron nitride epitaxial layers as neutron detector materials” Nuclear Instruments and Methods in Physics Research A 654 (2011) 417-420.
Losovyj, Ya B. et al. “The electronic structure change with Gd doping of Hf02 on silicon” Appl. Phys. Lett. 91, 132908 (2007); doi: 10.1063/1.2787967.
Maity, A. et al. “Hexagonal boron nitride neutron detectors with high detection efficiencies” Journal of Applied Physics 123, 044501 (2018); doi: 10.1063/1.5017979.
Maity, A. et al. “Realization of Highly Efficient Hexagonal Boron Nitride Neutron Detectors” 30. https://publishing.aip.org/publishing/journal-highlights/hexagonal-boron-nitride-semiconductors-enable-cost-effective-detection.
Maity, A. et al. “Toward achieving flexible and high sensitivity hexagonal boron nitride neutron detectors” Applied Physics Letters 111, 033507 (2017).
Many, A. “High-Field Effects in Photoconducting Cadmium Sulphide” J. Phys. Chern. Solids Pergamon Press 1965. vol. 26, pp. 575-585.
Many, A. “Tunneling Processes Across the CdS-Electrolyte Interface” J. Phys. Chem. Solids Pergamon Press 1965. vol. 26, pp. 587-593.
McGregor, D.S. et al. “Thermal neutron detection with pyrolytic boron nitride” Nuclear Instruments and Methods in Physics Research A 591 (2008) 530-533.
Neal, John et al. “Evaluation of Neutron and Gamma Detectors for High-Temperature Well-Logging Applications” Future of Instrumentation International Workshop (FIIW) (2011), pp. 172-175.
Noonan, William A. “Neutrons: It Is All in the Timing—The Physics of Nuclear Fission Chains and Their Detection” Johns Hopkins APL Technical Digest, vol. 32, No. 5 (2014) 762-773.
Osberg, Kevin et al. “A Handheld Neutron—Detection Sensor System Utilizing a New Class of Boron Carbide Diode” IEEE Sensors Journal, vol. 6, No. 6, Dec. 2006.
Shao, Q. et al. “High aspect ratio composite structures with 48.5% thermal neutron detection efficiency” Applied Physics Letters 102, 063505 (2013) 4 pages.
Spieler, H.G. et al. “Assessment of Present and Future Large-Scale Semiconductor Detector Systems” Presented at the IEEE 1984 Nuclear Science Symposium, Orlando, FL, Oct. 31-Nov. 2, 1984, Nov. 1, 1984.