Works matching Krypton
Results: 1204
Economic Aspects of Krypton and Xenon Production Technology.
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- Chemical & Petroleum Engineering, 2020, v. 56, n. 3/4, p. 263, doi. 10.1007/s10556-020-00768-x
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Krypton-enhanced ventilation CT with dual energy technique: Experimental study for optimal krypton concentration.
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- Experimental Lung Research, 2014, v. 40, n. 9, p. 439, doi. 10.3109/01902148.2014.946630
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Titelbild: Hydrogen‐Bonded Metal–Nucleobase Frameworks for Efficient Separation of Xenon and Krypton (Angew. Chem. 11/2022).
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- Angewandte Chemie, 2022, v. 134, n. 11, p. 1, doi. 10.1002/ange.202202166
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Berichtigung: High‐Silica CHA Zeolite Membrane with Ultra‐High Selectivity and Irradiation Stability for Krypton/Xenon Separation.
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- Angewandte Chemie, 2021, v. 133, n. 39, p. 21262, doi. 10.1002/ange.202110687
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Mixed Noble‐Gas Compounds of Krypton(II) and Xenon(VI); [F<sub>5</sub>Xe(FKrF)AsF<sub>6</sub>] and [F<sub>5</sub>Xe(FKrF)<sub>2</sub>AsF<sub>6</sub>].
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- Angewandte Chemie, 2021, v. 133, n. 15, p. 8230, doi. 10.1002/ange.202014682
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Estimation of the Cost of Producing and Enriching a Krypton-Xenon Mixture.
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- Chemical & Petroleum Engineering, 2015, v. 51, n. 1/2, p. 67, doi. 10.1007/s10556-015-0002-7
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A study on dissociation of sII krypton hydrate and the effect of hydrocarbon guest molecules as stabilizer by molecular dynamics simulation.
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- Phase Transitions, 2017, v. 90, n. 11, p. 1128, doi. 10.1080/01411594.2017.1309404
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Neuroprotective Effects of Krypton Inhalation on Photothrombotic Ischemic Stroke.
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- Biomedicines, 2024, v. 12, n. 3, p. 635, doi. 10.3390/biomedicines12030635
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Krypton isotopic signature study of the primary coolant of CANDU nuclear power plant.
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- Journal of Radioanalytical & Nuclear Chemistry, 2009, v. 282, n. 3, p. 761, doi. 10.1007/s10967-009-0159-7
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Дослідження багатоцільової промислової установки для отримання криптону та ксенону високої чистоти.
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- Refrigeration Engineering & Technology, 2022, v. 58, n. 1, p. 21, doi. 10.15673/ret.v58i1.2313
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Radiative Emissions in Visible–IR of Krypton Excilamp: Experimental and Theoretical Interpretations.
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- Plasma Chemistry & Plasma Processing, 2019, v. 39, n. 5, p. 1243, doi. 10.1007/s11090-019-09999-0
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Physico-Chemical Processes Induced by Electrical Breakdown and Discharge Responsible for Memory Effect in Krypton with < 10 ppm Nitrogen.
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- Plasma Chemistry & Plasma Processing, 2018, v. 38, n. 2, p. 415, doi. 10.1007/s11090-017-9870-2
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Effect of Adding Krypton Gas to SF<sub>6</sub> Gas on Electronic Distribution Function and Electronic Transport Coefficients.
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- Acta Physica Polonica: A, 2021, v. 140, n. 4, p. 332, doi. 10.12693/APhysPolA.140.332
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High-Pressure Reactivity of Kr and F<sub>2</sub>--Stabilization of Krypton in the +4 Oxidation State.
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- Crystals (2073-4352), 2017, v. 7, n. 11, p. 329, doi. 10.3390/cryst7110329
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Molecular dynamics study of diffusion of krypton in water at different temperatures.
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- International Journal of Modern Physics B: Condensed Matter Physics; Statistical Physics; Applied Physics, 2016, v. 30, n. 11, p. -1, doi. 10.1142/S0217979216500648
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Monitoring of kratom or Krypton intake in urine using GC-MS in clinical and forensic toxicology.
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- Analytical & Bioanalytical Chemistry, 2011, v. 400, n. 1, p. 127, doi. 10.1007/s00216-010-4464-3
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Comparison in the analytical performance between krypton and argon glow discharge plasmas as the excitation source for atomic emission spectrometry.
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- Analytical & Bioanalytical Chemistry, 2009, v. 393, n. 8, p. 2067, doi. 10.1007/s00216-009-2700-5
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Argon, krypton and xenon adsorption coefficients on various activated carbons under dynamic conditions.
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- Journal of Radioanalytical & Nuclear Chemistry, 2022, v. 331, n. 2, p. 1091, doi. 10.1007/s10967-021-08167-z
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Many-body interaction and equation of state for solid krypton from ab initio calculation.
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- Materials Research Innovations, 2015, v. 19, p. S5-782, doi. 10.1179/1432891714Z.0000000001193
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Benchmark Angle-Differential Cross-Section Ratios for Excitation of the 4p5s Configuration in Krypton.
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- Atoms (2218-2004), 2021, v. 9, n. 3, p. 61, doi. 10.3390/atoms9030061
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Multiple Sequential Ionization of Valence n = 4 Shell of Krypton by Intense Femtosecond XUV Pulses.
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- Atoms (2218-2004), 2020, v. 8, n. 4, p. 80, doi. 10.3390/atoms8040080
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Krypton Derivatization of an O<sub>2</sub>-Tolerant Membrane-Bound [NiFe] Hydrogenase Reveals a Hydrophobic Tunnel Network for Gas Transport.
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- Angewandte Chemie International Edition, 2016, v. 55, n. 18, p. 5586, doi. 10.1002/anie.201508976
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Hydrogen‐Bonding Assembly Meets Anion Coordination Chemistry: Framework Shaping and Polarity Tuning for Xenon/Krypton Separation.
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- Angewandte Chemie, 2023, v. 135, n. 49, p. 1, doi. 10.1002/ange.202313951
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Self‐Adjusting Metal–Organic Framework for Efficient Capture of Trace Xenon and Krypton.
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- Angewandte Chemie, 2022, v. 134, n. 11, p. 1, doi. 10.1002/ange.202117807
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High‐Silica CHA Zeolite Membrane with Ultra‐High Selectivity and Irradiation Stability for Krypton/Xenon Separation.
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- Angewandte Chemie, 2021, v. 133, n. 16, p. 9114, doi. 10.1002/ange.202100172
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Solid Phase of Krypton on the Exterior of Individual Single-Walled Carbon Nanotubes.
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- Journal of Low Temperature Physics, 2010, v. 161, n. 3/4, p. 367, doi. 10.1007/s10909-010-0218-z
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Topology and porosity control on zirconium–fumarate frameworks boosting xenon/krypton separation.
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- AIChE Journal, 2023, v. 69, n. 10, p. 1, doi. 10.1002/aic.18169
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Theoretical Kinetics Investigation of Krypton Dielectric Barrier Discharge for UV Lamp.
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- Plasma Chemistry & Plasma Processing, 2020, v. 40, n. 6, p. 1585, doi. 10.1007/s11090-020-10110-1
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Electron Impact Excitation of 4p5 5p Levels of Krypton Atom from Metastable States.
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- Optics & Spectroscopy, 2020, v. 128, n. 4, p. 443, doi. 10.1134/S0030400X20040153
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Design and performance characteristics of a krypton chloride ( λ = 222 nm) excimer laser.
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- Pramana: Journal of Physics, 2014, v. 82, n. 1, p. 165, doi. 10.1007/s12043-013-0657-6
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Determination of potential energy functions of argon, krypton, and xenon via the inversion of reduced-viscosity collision integrals at zero pressure.
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- Canadian Journal of Chemistry, 2003, v. 81, n. 7, p. 866, doi. 10.1139/v03-095
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ТЕПЛООБМЕННЫЕ АППАРАТЫ, ПЕРСПЕКТИВНЫЕ ДЛЯ ИСПОЛЬЗОВАНИЯ В УСТАНОВКАХ ОБОГАЩЕНИЯ КРИПТОНОКСЕНОНОВОЙ СМЕСИ.
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- Refrigeration Engineering & Technology, 2015, v. 51, n. 1, p. 7, doi. 10.15673/0453-8307.1/2015.34195
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Extreme-ultraviolet wavelength and lifetime measurements in highly ionized krypton.
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- Canadian Journal of Physics, 2005, v. 83, n. 11, p. 1127, doi. 10.1139/P05-066
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Contributions of high-n dielectronic satellites to krypton K-shell emission spectra.
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- Canadian Journal of Physics, 2003, v. 81, n. 10, p. 1177, doi. 10.1139/p03-097
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Hydrogen‐Bonded Metal–Nucleobase Frameworks for Efficient Separation of Xenon and Krypton.
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- Angewandte Chemie, 2022, v. 134, n. 11, p. 1, doi. 10.1002/ange.202117609
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CoNi Alloy Nanoparticles Embedded in Metal–Organic Framework‐Derived Carbon for the Highly Efficient Separation of Xenon and Krypton via a Charge‐Transfer Effect.
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- Angewandte Chemie, 2021, v. 133, n. 5, p. 2461, doi. 10.1002/ange.202011778
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Production of High-Purity Krypton and Xenon. Purification from Trace Impurities.
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- Chemical & Petroleum Engineering, 2017, v. 52, n. 9/10, p. 693, doi. 10.1007/s10556-017-0254-5
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Krypton-xenon separation properties of SAPO-34 zeolite materials and membranes.
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- AIChE Journal, 2017, v. 63, n. 2, p. 761, doi. 10.1002/aic.15434
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Neutron Irradiation Effect on the Hardness of Nickel Titanium Alloy Modified by Krypton Ions.
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- Russian Physics Journal, 2020, v. 63, n. 7, p. 1293, doi. 10.1007/s11182-020-02146-9
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Demonstration of a diode-pumped dual-wavelength metastable krypton laser.
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- High Power Laser Science & Engineering, 2023, v. 11, p. 1, doi. 10.1017/hpl.2023.73
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Quantitative and isotopic analysis of released and retained krypton and xenon fission gases from irradiated metallic fuels.
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- Journal of Radioanalytical & Nuclear Chemistry, 2017, v. 312, n. 3, p. 517, doi. 10.1007/s10967-017-5254-6
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The influence of krypton and bismuth-krypton implantation on manganin sensitivity to temperature and hydrostatic pressure.
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- High Pressure Research, 2007, v. 27, n. 1, p. 193, doi. 10.1080/08957950601104575
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The vacuum ultraviolet spectrum of krypton and xenon excimers excited in a cooled dc discharge.
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- Applied Physics B: Lasers & Optics, 1998, v. 66, n. 1, p. 81, doi. 10.1007/s003400050359
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Experimental determination of radon entrapment in adsorbers of thorough-purification unit of krypton-xenon mixture producing plant KhROM-3.
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- Chemical & Petroleum Engineering, 2012, v. 48, n. 5/6, p. 357, doi. 10.1007/s10556-012-9624-1
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Influence of fat content and temperature of liquid on krypton solubility. Experimental data.
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- Chemical & Petroleum Engineering, 2010, v. 46, n. 7/8, p. 474, doi. 10.1007/s10556-010-9362-1
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Experimental determination of tetrafluoromethane and hexafluoroethane accumulation in khrom-3 krypton-xenon mixture producing equipment.
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- Chemical & Petroleum Engineering, 2010, v. 46, n. 7/8, p. 468, doi. 10.1007/s10556-010-9361-2
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Experimental determination of the loss of krypton and xenon in an adsorption purification unit of a contemporary ASU.
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- Chemical & Petroleum Engineering, 2008, v. 44, n. 3/4, p. 131, doi. 10.1007/s10556-008-9024-8
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Development and creation of an efficient Khrom-3 unit for preparing krypton-xenon mixtures.
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- Chemical & Petroleum Engineering, 2007, v. 43, n. 5/6, p. 259, doi. 10.1007/s10556-007-0047-3
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Retention of Krypton and Xenon in Apparatuses of Air Cleaning System of Industrial Air Separation Plants.
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- Chemical & Petroleum Engineering, 2004, v. 40, n. 1/2, p. 36, doi. 10.1023/B:CAPE.0000024133.10556.77
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Krypton and Xenon Losses in Low-Pressure Air Separation Rectification Units.
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- Chemical & Petroleum Engineering, 2003, v. 39, n. 11/12, p. 725, doi. 10.1023/B:CAPE.0000017619.28195.7e
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