Works matching DE "AZIDES
Results: 1109
Purification and Biochemical Characterization of the F<sub>1</sub>-ATPase from Acidithiobacillus ferrooxidans NASF-1 and Analysis of the atp Operon.
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- Bioscience, Biotechnology & Biochemistry, 2005, v. 69, n. 10, p. 1884, doi. 10.1271/bbb.69.1884
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Involvement of Sulfide:Quinone Oxidoreductase in Sulfur Oxidation of an Acidophilic Iron-Oxidizing Bacterium, Acidithiobacillus ferrooxidans NASF-1.
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- Bioscience, Biotechnology & Biochemistry, 2004, v. 68, n. 12, p. 2519, doi. 10.1271/bbb.68.2519
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Synthesis of Chondroitin Sulfate E Hexasaccharide in the Repeating Region by an Effective Elongation Strategy toward Longer Chondroitin Oligosaccharide.
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- Bioscience, Biotechnology & Biochemistry, 2004, v. 68, n. 12, p. 2436, doi. 10.1271/bbb.68.2436
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Inhibitory Activities of Aromatic Amino Acid Esters and Peptides against Ovalbumin Permeation through Caco-2 Cell Monolayers.
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- Bioscience, Biotechnology & Biochemistry, 2003, v. 67, n. 11, p. 2498, doi. 10.1271/bbb.67.2498
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Crosslinked Electrospun PET Webs.
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- AATCC Review, 2005, v. 5, n. 7, p. 28
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Inhibiting effect of thiosemicarbazide on cold rolled carbon steel.
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- Corrosion Engineering, Science & Technology, 2006, v. 41, n. 1, p. 77, doi. 10.1179/174327806X93947
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Modification of Polyolefins by Click Chemistry.
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- Macromolecular Chemistry & Physics, 2017, v. 218, n. 19, p. n/a, doi. 10.1002/macp.201700279
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Polyethylene-Based Tadpole Copolymers.
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- Macromolecular Chemistry & Physics, 2017, v. 218, n. 18, p. n/a, doi. 10.1002/macp.201600568
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Flexible Diazide Based Sulfonated Polytriazoles and Their Proton Exchange Membrane Properties.
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- Macromolecular Chemistry & Physics, 2017, v. 218, n. 14, p. n/a, doi. 10.1002/macp.201700070
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Glass-Metal Adhesive Polymers from Copper(I)-Catalyzed Azide-Alkyne Cycloaddition.
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- Macromolecular Chemistry & Physics, 2017, v. 218, n. 8, p. n/a, doi. 10.1002/macp.201600579
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Highly Efficient and Reusable Microporous Schiff Base Network Polymer as a Heterogeneous Catalyst for CuAAC Click Reaction.
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- Macromolecular Chemistry & Physics, 2015, v. 216, n. 16, p. 1746, doi. 10.1002/macp.201500141
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Telescoped Flow Synthesis of Azacyclic Scaffolds Exploiting the Chromoselective Photolysis of Vinyl Azides and Azirines.
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- Chemistry - A European Journal, 2024, v. 30, n. 38, p. 1, doi. 10.1002/chem.202401491
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Deciphering Iron‐Catalyzed C−H Amination with Organic Azides: N<sub>2</sub> Cleavage from a Stable Organoazide Complex.
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- Chemistry - A European Journal, 2024, v. 30, n. 4, p. 1, doi. 10.1002/chem.202303410
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Neutral Silylyne Complex of Molybdenum: Synthesis, Properties, and Access to Silaiminoacyl Complexes via [2+3] Cycloaddition.
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- Chemistry - A European Journal, 2023, v. 29, n. 70, p. 1, doi. 10.1002/chem.202302470
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A Guanidine‐Supported π‐Complex of Germanium Amenable to Intramolecular C−C Cleavage in Arene and Ge Atom Transfer.
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- Chemistry - A European Journal, 2023, v. 29, n. 63, p. 1, doi. 10.1002/chem.202301981
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Organocatalyzed Regioselective Synthesis of 1,5‐Disubstituted 1,2,3‐Triazolyl Glycoconjugates.
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- Chemistry - A European Journal, 2023, v. 29, n. 55, p. 1, doi. 10.1002/chem.202301749
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Cover Feature: Azide‐Substituted 1,2,3‐Triazolium Salts as Useful Synthetic Synthons: Access to Triazenyl Radicals and Staudinger Type Reactivity (Chem. Eur. J. 34/2023).
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- Chemistry - A European Journal, 2023, v. 29, n. 34, p. 1, doi. 10.1002/chem.202301528
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Tunable Macrocyclic Polyparaphenylene Nanolassos via Copper‐Free Click Chemistry.
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- Chemistry - A European Journal, 2023, v. 29, n. 33, p. 1, doi. 10.1002/chem.202300668
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Trapping of a Transient Base‐Stabilised Alumylene and Alumylene‐Type Reactivity of a Self‐Stabilising Dialumene towards Organic Azides.
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- Chemistry - A European Journal, 2023, v. 29, n. 31, p. 1, doi. 10.1002/chem.202300483
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Mechanistic Aspects on [3+2] Cycloaddition (32CA) Reactions of Azides to Nitroolefins: A Computational and Kinetic Study.
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- Chemistry - A European Journal, 2022, v. 28, n. 69, p. 1, doi. 10.1002/chem.202202294
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Direct Photomodification of Polymer Surfaces: Unleashing the Potential of Aryl‐Azide Copolymers.
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- Advanced Functional Materials, 2018, v. 28, n. 30, p. 1, doi. 10.1002/adfm.201800976
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The Cu(I)-mediated azide-alkyne cycloadditions as a facile and efficient route for functionalization of waterborne polyurethane.
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- Journal of Polymer Research, 2014, v. 21, n. 1, p. 1, doi. 10.1007/s10965-013-0320-4
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Synthesis and characterization of amphiphilic triblock-graft PEG-( b-PαN<sub>3</sub>CL- g-Alkyne)<sub>2</sub> degradable copolymers.
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- Journal of Polymer Research, 2010, v. 17, n. 5, p. 697, doi. 10.1007/s10965-009-9358-8
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Reverse-docking as a computational tool for the study of asymmetric organocatalysis.
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- Journal of Computer-Aided Molecular Design, 2004, v. 18, n. 5, p. 303, doi. 10.1023/B:JCAM.0000047813.47656.36
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Exploring the intricate regulatory network controlling the thiazide-sensitive NaCl cotransporter (NCC).
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- Pflügers Archiv: European Journal of Physiology, 2011, v. 462, n. 6, p. 767, doi. 10.1007/s00424-011-1027-1
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Relationship between the Critical Temperature of Thermal Explosion and the Thickness of a Lead Azide Plane Crystal.
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- Combustion, Explosion, & Shock Waves, 2018, v. 54, n. 1, p. 82, doi. 10.1134/S0010508218010124
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Spatial and temporal characteristics of detonation wave propagation in silver azide.
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- Combustion, Explosion, & Shock Waves, 2015, v. 51, n. 3, p. 353, doi. 10.1134/S0010508215030119
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Optimization of the initiation capability of a microdetonator.
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- Combustion, Explosion, & Shock Waves, 2013, v. 49, n. 4, p. 501, doi. 10.1134/S0010508213040151
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Equations of state of silver azide and calculation of its Hugoniots.
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- Combustion, Explosion, & Shock Waves, 2013, v. 49, n. 4, p. 484, doi. 10.1134/S0010508213040126
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Determining the width of the reaction wave front in the explosive decomposition of silver azide.
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- Combustion, Explosion, & Shock Waves, 2012, v. 48, n. 4, p. 488, doi. 10.1134/S0010508212040168
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Initiation of a reactive material by a radiation beam absorbed by optical heterogeneities of the material.
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- Combustion, Explosion, & Shock Waves, 2011, v. 47, n. 5, p. 581, doi. 10.1134/S0010508211050121
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Effect of the laser radiation wavelength on the energy threshold of initiation of heavy metal azides.
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- Combustion, Explosion, & Shock Waves, 2011, v. 47, n. 5, p. 591, doi. 10.1134/S0010508211050133
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Decomposition of lead azide, pentaerythrite tetranitrate, and a laminate system composed of these substances under vibrational loading.
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- Combustion, Explosion, & Shock Waves, 2009, v. 45, n. 1, p. 64, doi. 10.1007/s10573-009-0009-5
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Explosive decomposition of slightly compacted powders of lead azide over a wide range of laser pulse length.
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- Combustion, Explosion, & Shock Waves, 2008, v. 44, n. 5, p. 583, doi. 10.1007/s10573-008-0088-8
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Critical initiation-energy density as a function of single-crystal size in explosive decomposition of silver azide.
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- Combustion, Explosion, & Shock Waves, 2008, v. 44, n. 2, p. 190, doi. 10.1007/s10573-008-0025-x
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Molecular-beam mass-spectrometric study of the flame structure of composite propellants based on nitramines and glycidyl azide polymer at a pressure of 1 MPa.
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- Combustion, Explosion, & Shock Waves, 2006, v. 42, n. 6, p. 663, doi. 10.1007/s10573-006-0099-2
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Effect of radiation treatment on silver azide sensitivity.
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- Combustion, Explosion, & Shock Waves, 2006, v. 42, n. 2, p. 227, doi. 10.1007/s10573-006-0043-5
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Kinetics and Mechanism of Explosive Decomposition of Heavy Metal Azides.
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- Combustion, Explosion, & Shock Waves, 2006, v. 42, n. 1, p. 94, doi. 10.1007/s10573-006-0012-z
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Effect of Temperature on the Growth Rate of Pre-Explosion Luminescence in Silver Azide.
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- Combustion, Explosion, & Shock Waves, 2005, v. 41, n. 3, p. 333, doi. 10.1007/s10573-005-0040-0
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Topography of origination of the explosive-decomposition reaction in silver azide by an electron-accelerator pulse.
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- Combustion, Explosion, & Shock Waves, 2005, v. 41, n. 2, p. 223, doi. 10.1007/s10573-005-0026-y
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Explosive Glow of Heavy Metal Azides under Pulsed Initiation by Laser and Electron Beams.
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- Combustion, Explosion, & Shock Waves, 2004, v. 40, n. 5, p. 612, doi. 10.1023/B:CESW.0000041415.87895.d8
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Divacancy Model of Heavy Metal Azide Initiation.
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- Combustion, Explosion, & Shock Waves, 2004, v. 40, n. 2, p. 209, doi. 10.1023/B:CESW.0000020143.83572.45
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Dynamic Topography of Silver Azide Pre‐Explosion Luminescence.
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- Combustion, Explosion, & Shock Waves, 2003, v. 39, n. 5, p. 581, doi. 10.1023/A:1026170020518
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Azidoisocyanides, New Bifunctional Reagents for Multicomponent Reactions and Biomolecule Modifications.
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- Chemistry of Natural Compounds, 2014, v. 50, n. 2, p. 197, doi. 10.1007/s10600-014-0914-z
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Unusual course of the reaction of 15( S)-bromoisosteviol methyl ester with sodium azide.
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- Chemistry of Natural Compounds, 2010, v. 46, n. 4, p. 562, doi. 10.1007/s10600-010-9675-5
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Synthesis of 17 α-amino-5 α-androst-2-ene from epiandrosterone.
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- Chemistry of Natural Compounds, 2006, v. 42, n. 3, p. 313, doi. 10.1007/s10600-006-0108-4
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The Nobel Prize in Chemistry 2022: masters of molecular LEGO.
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- Chemistry in New Zealand, 2023, v. 87, n. 1, p. 18
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Initiating the explosive decomposition of heavy metal azides by electron-beam-induced electric discharge.
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- Technical Physics Letters, 2009, v. 35, n. 10, p. 954, doi. 10.1134/S106378500910023X
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Determining the temperature of silver azide explosion products.
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- Technical Physics Letters, 2006, v. 32, n. 1, p. 23, doi. 10.1134/S106378500601007X
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Effect of preliminary irradiation on the detonation sensitivity of lead azide.
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- Technical Physics Letters, 2006, v. 32, n. 1, p. 28, doi. 10.1134/S1063785006010093
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