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Articoli di riviste sul tema "Heterochiral complex"
Kabza, Adam M., Brian E. Young, Nandini Kundu e Jonathan T. Sczepanski. "Heterochiral nucleic acid circuits". Emerging Topics in Life Sciences 3, n. 5 (28 agosto 2019): 501–6. http://dx.doi.org/10.1042/etls20190102.
Testo completoKomiya, Naruyoshi, Takeharu Kageyama, Masaya Naito e Takeshi Naota. "A clothes-peg-shaped binucleartrans-bis(2-aminotroponato)palladium(II) complex bearing pentamethylene spacers". Acta Crystallographica Section C Crystal Structure Communications 69, n. 5 (23 aprile 2013): 503–5. http://dx.doi.org/10.1107/s0108270113004484.
Testo completoBringmann, Gerhard, Doris Feineis, Ralph Brückner, Eva-Maria Peters e Karl Peters. "2-Hexanoyl-1-tribromomethyl-1,2,3,4-tetrahydro-β-carboline: Crystal Structure Analysis of a Potent Inhibitor of Complex I of Mitochondrial Respiration". Zeitschrift für Naturforschung B 55, n. 1 (1 gennaio 2000): 94–99. http://dx.doi.org/10.1515/znb-2000-0115.
Testo completoJiao, Luyang, Mengying Du, Yameng Hou, Yuan Ma e Xianglei Kong. "Homochiral or Heterochiral: A Systematic Study of Threonine Clusters Using a FT ICR Mass Spectrometer". Symmetry 14, n. 1 (6 gennaio 2022): 86. http://dx.doi.org/10.3390/sym14010086.
Testo completoFossey, John S., Ryosuke Matsubara, Hiroshi Kiyohara e Shū Kobayashi. "Heterochiral Triangulo Nickel Complex as Evidence of a Large Positive Nonlinear Effect in Catalysis". Inorganic Chemistry 47, n. 3 (febbraio 2008): 781–83. http://dx.doi.org/10.1021/ic7017727.
Testo completoRoithová, Jana. "Diastereoisomeric proton-bound complexes of 1,5-diaza-cis-decalin in the gas phase". Collection of Czechoslovak Chemical Communications 74, n. 2 (2009): 243–54. http://dx.doi.org/10.1135/cccc2008185.
Testo completoRagland, Beau, e Lianjun Wu. "Characteristic Analysis of Heterochiral TCP Muscle as a Extensile Actuator for Soft Robotics Applications". Actuators 12, n. 5 (28 aprile 2023): 189. http://dx.doi.org/10.3390/act12050189.
Testo completoMatveevskaya, Vladislava, Dmitry Pavlov e Andrei Potapov. "Iridium(III) and Rhodium(III) Half-Sandwich Coordination Compounds with 11H-Indeno[1,2-b]quinoxalin-11-one Oxime: A Case of Spontaneous Resolution of Rh(III) Complex". Inorganics 10, n. 11 (25 ottobre 2022): 179. http://dx.doi.org/10.3390/inorganics10110179.
Testo completoKazemi, Zahra, Hadi Amiri Rudbari, Mehdi Sahihi, Valiollah Mirkhani, Majid Moghadam, Shahram Tangestaninejad, Iraj Mohammadpoor-Baltork e Abolghasem Abbasi Kajani. "New homochiral and heterochiral Mo(VI) complex from racemic ligand: Synthesis, X-ray structure, diastereomers separation and biological activities". Polyhedron 170 (settembre 2019): 70–85. http://dx.doi.org/10.1016/j.poly.2019.05.021.
Testo completoŘezanka, Tomáš, Andrea Palyzová, Milada Vítová, Tomáš Brányik, Markéta Kulišová e Jarošová Kolouchová Irena. "Structural Characterization of Mono- and Dimethylphosphatidylethanolamines from Various Organisms Using a Complex Analytical Strategy including Chiral Chromatography". Symmetry 14, n. 3 (19 marzo 2022): 616. http://dx.doi.org/10.3390/sym14030616.
Testo completoTesi sul tema "Heterochiral complex"
Dussart, Caitlyn. "Chiral self-recognition study of metallic complexes : towards coordination polymers". Electronic Thesis or Diss., Strasbourg, 2024. http://www.theses.fr/2024STRAE006.
Testo completoMetallo-supramolecular polymeric assemblies are a new class of materials that have emerged in recent decades. These materials exhibit a wide range of properties depending on the nature of the metals and the ditopic ligands used. The reversibility of the coordination bonds also gives the system a dynamic character that can response to an external stimulus. By introducing chirality into these molecular systems, we can study the ability of these molecular structures to associate or disassociate to form homochiral or heterochiral species.This manuscript focuses on the synthesis and coordination chemistry of chiral ligands with C2-symmetry, i.e. bisoxazolines, bisimidazolines and derivates of 1,2-diamonocyclohexane. The complexation of two ligands to a transition metal gives rise to homoleptic ML2 complexes, in which the chirality of the ligands and the coordination geometry are important parameters for observing self-association or hetero-association of the ligands. All these complexes have been studied and characterized in the solid state or in solution and the influence of the chiral groups of the ligands has also been analysed. In order to convert these complexes into polymeric assemblies, chiral ditopic ligands have also been designed, synthesized and studied