Search Results - (Author, Cooperation:S. J. Moon)
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1Ahn, S. J., Moon, P., Kim, T.-H., Kim, H.-W., Shin, H.-C., Kim, E. H., Cha, H. W., Kahng, S.-J., Kim, P., Koshino, M., Son, Y.-W., Yang, C.-W., Ahn, J. R.
American Association for the Advancement of Science (AAAS)
Published 2018Staff ViewPublication Date: 2018-08-24Publisher: American Association for the Advancement of Science (AAAS)Print ISSN: 0036-8075Electronic ISSN: 1095-9203Topics: BiologyChemistry and PharmacologyGeosciencesComputer ScienceMedicineNatural Sciences in GeneralPhysicsKeywords: Physics, Applied, PhysicsPublished by: -
2Seungjae Song, S. Kim, G. H. Ahn, J. H. Seo, Julian L. Schmehr, Michael Aling, Stephen D. Wilson, Y. K. Kim, and S. J. Moon
American Physical Society (APS)
Published 2018Staff ViewPublication Date: 2018-07-10Publisher: American Physical Society (APS)Print ISSN: 1098-0121Electronic ISSN: 1095-3795Topics: PhysicsKeywords: Electronic structure and strongly correlated systemsPublished by: -
3So Yeun Kim, Tae Yun Kim, Luke J. Sandilands, Soobin Sinn, Min-Cheol Lee, Jaeseok Son, Sungmin Lee, Ki-Young Choi, Wondong Kim, Byeong-Gyu Park, C. Jeon, Hyeong-Do Kim, Cheol-Hwan Park, Je-Geun Park, S. J. Moon, and T. W. Noh
American Physical Society (APS)
Published 2018Staff ViewPublication Date: 2018-03-28Publisher: American Physical Society (APS)Print ISSN: 0031-9007Electronic ISSN: 1079-7114Topics: PhysicsKeywords: Condensed Matter: Electronic Properties, etc.Published by: -
4W. C. Chang ; M. Dey ; P. Liu ; S. O. Mansoorabadi ; S. J. Moon ; Z. K. Zhao ; C. L. Drennan ; H. W. Liu
Nature Publishing Group (NPG)
Published 2013Staff ViewPublication Date: 2013-04-05Publisher: Nature Publishing Group (NPG)Print ISSN: 0028-0836Electronic ISSN: 1476-4687Topics: BiologyChemistry and PharmacologyMedicineNatural Sciences in GeneralPhysicsKeywords: *Biocatalysis ; Biological Products/chemistry/metabolism ; Crystallography, X-Ray ; Fosfomycin/*biosynthesis/chemistry/metabolism ; Hydrogenation ; Iron ; Magnetic Resonance Spectroscopy ; Models, Molecular ; Nonheme Iron Proteins/chemistry/metabolism ; Organophosphonates/chemistry/*metabolism ; Oxidoreductases/chemistry/*metabolism ; Substrate Specificity ; Time FactorsPublished by: -
5Christi Peterson, Michael W. Swift, Zach Porter, Raphaële J. Clément, Guang Wu, G. H. Ahn, S. J. Moon, B. C. Chakoumakos, Jacob P. C. Ruff, Huibo Cao, Chris Van de Walle, and Stephen D. Wilson
American Physical Society (APS)
Published 2018Staff ViewPublication Date: 2018-10-17Publisher: American Physical Society (APS)Print ISSN: 1098-0121Electronic ISSN: 1095-3795Topics: PhysicsKeywords: Electronic structure and strongly correlated systemsPublished by: -
6J. Burschka ; N. Pellet ; S. J. Moon ; R. Humphry-Baker ; P. Gao ; M. K. Nazeeruddin ; M. Gratzel
Nature Publishing Group (NPG)
Published 2013Staff ViewPublication Date: 2013-07-12Publisher: Nature Publishing Group (NPG)Print ISSN: 0028-0836Electronic ISSN: 1476-4687Topics: BiologyChemistry and PharmacologyMedicineNatural Sciences in GeneralPhysicsPublished by: -
7Celliers, P. M. ; Collins, G. W. ; Bradley, D. K. ; Moon, S. J. ; Munro, D. H. ; Cauble, R. ; Gold, D. M. ; Da Silva, L. B. ; Weber, F. A. ; Wallace, R. J. ; Hammel, B. A. ; Hsing, W. W.
[S.l.] : American Institute of Physics (AIP)
Published 2001Staff ViewISSN: 1089-7623Source: AIP Digital ArchiveTopics: PhysicsElectrical Engineering, Measurement and Control TechnologyNotes: Initial laser-driven equation of state (EOS) experiments on liquid deuterium employed x-ray radiography to track the shock and particle speeds in the shock compressed sample. With the high pressures available with laser drivers we found that it is also possible to track the shock front directly with a velocity interferometer system for any reflector (VISAR) because the shock front reflects light across the visible spectrum with reflectance around 50% for shocks stronger than 50 GPa in liquid deuterium. We have observed similar reflectances in other dielectric samples, such as diamond, LiF, and water. The pressure required to produce a reflecting shock varies with each material. This phenomenon allows us to design impedance-matched EOS experiments using velocity interferometry to measure the propagation speed in the transparent shocked materials, and step breakout measurements to determine the speed in the pusher. In a different kind of experiment we have observed double shock compression in liquid deuterium by impacting a shock in liquid deuterium at a LiF anvil placed in the liquid sample. VISAR can be used to track the shock in the deuterium as well as the motion of the deuterium–LiF interface subsequent to impact. This allows us to diagnose double-shock states using the VISAR technique. As a final example VISAR can be used to track shock overtake events such as produced by shaped pulse compression or shock reverberation effects in the accelerating pusher. This capability is directly applicable to shock timing experiments needed to tune the drive pulse for inertial confinement fusion capsules on the National Ignition Facility. © 2001 American Institute of Physics.Type of Medium: Electronic ResourceURL: -
8Staff View
ISSN: 1573-4811Source: Springer Online Journal Archives 1860-2000Topics: Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision MechanicsType of Medium: Electronic ResourceURL: