45 results on '"Tampo, Motonobu"'
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2. Developments on muonic X-Ray measurement system for historical-cultural heritage samples in Japan Proton Accelerator Research Complex (J-PARC)
3. Negative muon beam status at the D-line of MUSE, J-PARC
4. Pulsed muon facility of J-PARC MUSE
5. Impact of Irradiation Side on Muon-Induced Single-Event Upsets in 65-nm Bulk SRAMs
6. A compact imaging system with a CdTe double-sided strip detector for non-destructive analysis using negative muonic X-rays
7. Design for detecting recycling muon after muon-catalyzed fusion reaction in solid hydrogen isotope target
8. Time evolution calculation of muon catalysed fusion: Emission of recycling muons from a two-layer hydrogen film
9. A novel challenge of nondestructive analysis on OGATA Koan’s sealed medicine by muonic X-ray analysis
10. Development of a non-destructive isotopic analysis method by gamma-ray emission measurement after negative muon irradiation
11. A compact imaging system with a CdTe double-sided strip detector for non-destructive analysis using negative muonic X-rays
12. Development of non-destructive isotopic analysis methods using muon beams and their application to the analysis of lead
13. Muonic X-ray measurements on mixtures of CaO/MgO and Fe3O4/MnO
14. Development of Nondestructive Elemental Analysis System for Hayabusa2 Samples Using Muonic X-rays
15. Muon-Induced Single-Event Upsets in 20-nm SRAMs: Comparative Characterization With Neutrons and Alpha Particles
16. Muonic X-ray Identification of Nuclear Materials Sealed in a Box
17. Impact of the Angle of Incidence on Negative Muon-Induced SEU Cross Sections of 65-nm Bulk and FDSOI SRAMs
18. Nondestructive High-Sensitivity Detections of Metallic Lithium Deposited on a Battery Anode Using Muonic X-rays
19. Chemical Environmental Effect on Muon Capture Processes for Iron Compounds
20. Negative and Positive Muon-Induced SEU Cross Sections in 28-nm and 65-nm Planar Bulk CMOS SRAMs
21. Negative and Positive Muon-Induced Single Event Upsets in 65-nm UTBB SOI SRAMs
22. Measurement and Mechanism Investigation of Negative and Positive Muon-Induced Upsets in 65-nm Bulk SRAMs
23. Imaging of Muonic X-ray of Light Elements with a CdTe Double-Sided Strip Detector
24. Isotope Identification of Lead by Muon Induced X-ray and Gamma-ray Measurements
25. Detection of Li in Li-ion Battery Electrode Materials by Muonic X-ray
26. Laser-induced plasma emission enhanced by microwaves in argon gas for potential application of nuclear fuel material analysis
27. Enhancement of LIBS emission using antenna-coupled microwave
28. Muonic X-ray measurements on mixtures of CaO/MgO and Fe3O4/MnO.
29. The Development of a Non-Destructive Analysis System with Negative Muon Beam for Industrial Devices at J-PARC MUSE
30. Laser Acceleration of Negative Ions by Coulomb Implosion Mechanism
31. Enhancement of intensity in microwave-assisted laser-induced breakdown spectroscopy for remote analysis of nuclear fuel recycling
32. Influence of Electrostatic and Magnetic Fields on Hot Electron Emission in Ultra-Intense Laser Matter Interactions
33. The Diagnosis Method for High-Energy Ion Beams Using Backscattered Particles for Laser-Driven Ion Acceleration Experiments
34. A diagnosis of intense ion beam by CR-39 detectors analyzing the back scattered particles
35. Highly-Efficient Ion Acceleration in Laser Plasma via Interaction of Intense Laser Pulse with Cluster-Gas Target
36. Interaction of high contrast laser pulse with foam-attached target
37. Simulation of Laser-Accelerated Proton Focusing and Diagnosis with a Permanent Magnet Quadrupole Triplet
38. Relativistic plasma shutter for ultraintense laser pulses
39. Use of imaging plates at near saturation for high energy density particles
40. Plasma Devices to Control Energetic Electrons Produced by Ultra-intense Lasers
41. Zonal Proton Generation from Target Edges Using Ultra-Intense Laser Pulse
42. Influence of Electrostatic and Magnetic Fields on Hot Electron Emission in Ultra-Intense Laser Matter Interactions
43. A diagnosis of intense ion beam by CR-39 detectors analyzing the back scattered particles.
44. Use of imaging plates at near saturation for high energy density particles
45. Use of imaging plates at near saturation for high energy density particles
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