Competitive coordination aggregation for V-shaped [Co3] and disc-like [Co7] complexes: synthesis, magnetic properties and catechol oxidase activity.
暂无分享,去创建一个
Santanu Chand | Jeff Lengyel | M. Shatruk | V. Bertolasi | D. Ray | Tufan Singha Mahapatra | D. Basak
[1] A. Frontera,et al. Carboxylate Coordination Assisted Aggregation for Quasi‐Tetrahedral and Partial‐Dicubane [Cu4] Coordination Clusters , 2016 .
[2] M. Shatruk,et al. Anion coordination selective [Mn3] and [Mn4] assemblies: synthesis, structural diversity, magnetic properties and catechol oxidase activity. , 2015, Dalton transactions.
[3] Chien‐Hong Cheng,et al. Cobalt catalysis involving π components in organic synthesis. , 2015, Accounts of chemical research.
[4] A. Frontera,et al. Unprecedented structural variations in trinuclear mixed valence Co(II/III) complexes: theoretical studies, pnicogen bonding interactions and catecholase-like activities. , 2015, Dalton transactions.
[5] Arindam Mukherjee,et al. Influence of Solvent in Solvothermal Syntheses: Change of Nuclearity in Mixed Valence CoII/III Complexes of a O-Donor-rich Schiff Base Ligand , 2015 .
[6] G. Sheldrick. Crystal structure refinement with SHELXL , 2015, Acta crystallographica. Section C, Structural chemistry.
[7] Shuhua Zhang,et al. Structural variation from heterometallic heptanuclear or heptanuclear to cubane clusters based on 2-hydroxy-3-ethoxy-benzaldehyde: effects of pH and temperature , 2014 .
[8] Hong Liang,et al. Dodecanuclear water cluster in bowl: microwave-assisted synthesis of a heptanuclear cobalt(II) cluster , 2014 .
[9] Arindam Mukherjee,et al. The synthesis, characterization and catecholase activity of dinuclear cobalt(II/III) complexes of an O-donor rich Schiff base ligand , 2014 .
[10] Shuhua Zhang,et al. Microwave-assisted Synthesis, Structure, and Properties of a Heptanuclear Cobalt Cluster with 2-Ethyliminomethyl-6-methoxy-phenol† , 2014 .
[11] V. Psycharis,et al. From Molecular Magnets to Magnetic Nanomaterials – Deposition of Co7 Single-Molecule Magnet; Theoretical Investigation of the Exchange Interactions , 2014 .
[12] M. Tong,et al. Disklike hepta- and tridecanuclear cobalt clusters. Synthesis, structures, magnetic properties, and DFT calculations. , 2014, Inorganic chemistry.
[13] L. Mandal,et al. Crystal structure, catecholase activity and ESI-MS of a mixed valence cobalt(III)–cobalt(II) complex derived from a macrocyclic ligand: Identification/proposition of hydrogen bonded metal complex⋯solvent aggregates in ESI-MS , 2014 .
[14] J. Vittal,et al. Influence of inductive effects and steric encumbrance on the catecholase activities of copper(II) complexes of reduced Schiff base ligands. , 2014, Dalton transactions.
[15] H. Pellissier,et al. Enantioselective cobalt-catalyzed transformations. , 2014, Chemical reviews.
[16] D. Das,et al. A radical pathway in catecholase activity with nickel(II) complexes of phenol based "end-off" compartmental ligands. , 2014, Dalton transactions.
[17] D. Das,et al. A combined experimental and theoretical investigation on the role of halide ligands on the catecholase-like activity of mononuclear nickel(II) complexes with a phenol-based tridentate ligand. , 2013, Inorganic chemistry.
[18] Yeasin Sikdar,et al. Syntheses, crystal structures and catecholase activity of new dinuclear and cyclic trinuclear mixed valence cobalt (II, III) complexes , 2013 .
[19] N. Dalal,et al. Di-, tri-, and tetranuclear nickel(II) complexes with oximato bridges: magnetism and catecholase-like activity of two tetranuclear complexes possessing rhombic topology. , 2013, Inorganic chemistry.
[20] D. Nocera,et al. Mechanism of cobalt self-exchange electron transfer. , 2013, Journal of the American Chemical Society.
[21] D. Das,et al. Dinuclear cobalt(II) complexes of Schiff-base compartmental ligands: Syntheses, crystal structure and bio-relevant catalytic activities , 2013 .
[22] L. Mercante,et al. New synthetic route toward heterometallic 3d-3d' and 3d-4f single-molecule magnets. The first Co(II)-Mn(III) heterometallic complex. , 2013, Inorganic chemistry.
[23] N. Aliaga-Alcalde,et al. Structures, magnetochemistry, spectroscopy, theoretical study, and catechol oxidase activity of dinuclear and dimer-of-dinuclear mixed-valence Mn(III)Mn(II) complexes derived from a macrocyclic ligand. , 2013, Inorganic chemistry.
[24] S. Majumder,et al. Dinuclear mixed-valence Co(III)Co(II) complexes derived from a macrocyclic ligand: unique example of a Co(III)Co(II) complex showing catecholase activity. , 2013, Dalton transactions.
[25] M. Drew,et al. Insertion of a hydroxido bridge into a diphenoxido dinuclear copper(II) complex: drastic change of the magnetic property from strong antiferromagnetic to ferromagnetic and enhancement in the catecholase activity. , 2012, Inorganic chemistry.
[26] Louis J. Farrugia,et al. WinGX and ORTEP for Windows: an update , 2012 .
[27] V. Gómez,et al. Catalase Activity of Dinuclear MnIII Compounds with Chlorobenzoato Bridges , 2012 .
[28] E. Brechin,et al. Investigating the solid state hosting abilities of homo- and hetero-valent [Co7] metallocalix[6]arenes. , 2012, Dalton transactions.
[29] W. Wernsdorfer,et al. The search for cobalt single-molecule magnets: A disk-like CoIIICoII6 cluster with a ligand derived from a novel transformation of 2-acetylpyridine , 2011 .
[30] Hong Liang,et al. Anion induced diversification from heptanuclear to tetranuclear clusters: syntheses, structures and magnetic properties. , 2011, Dalton transactions.
[31] A. Powell,et al. Synthesis, characterization, and single-molecule metamagnetism of new Co(II) polynuclear complexes of pyridine-2-ylmethanol. , 2011, Dalton transactions.
[32] Kun Zhang,et al. Microwave versus traditional solvothermal synthesis of Ni7(II) discs: effect of ligand on exchange reaction in solution studied by electrospray ionization-mass spectroscopy and magnetic properties. , 2011, Inorganic chemistry.
[33] Nigel G. R. Hearns,et al. New phenoxido-bridged quasi-tetrahedral and rhomboidal [Cu4] compounds bearing μ4-oxido or μ(1,1)-azido ligands: synthesis, chemical reactivity, and magnetic studies. , 2011, Inorganic chemistry.
[34] Bingxue Li,et al. Traditional and Microwave-Assisted Solvothermal Synthesis and Surface Modification of Co7 Brucite Disk Clusters and Their Magnetic Properties , 2010 .
[35] Nigel G. R. Hearns,et al. New mu(4)-oxido-bridged copper benzoate quasi-tetrahedron and bis-mu(3)-hydroxido-bridged copper azide and copper thiocyanate stepped cubanes: core conversion, structural diversity, and magnetic properties. , 2010, Inorganic chemistry.
[36] A. Powell,et al. Modelling the magnetic behaviour of square-pyramidal Co(II)5 aggregates: tuning SMM behaviour through variations in the ligand shell. , 2009, Chemistry.
[37] Hong Liang,et al. Microwave-assisted synthesis, crystal structure and properties of a disc-like heptanuclear Co(II) cluster and a heterometallic cubanic Co(II) cluster , 2009 .
[38] V. Bertolasi,et al. Aqua bridged Cu2 dimer of a heptadentate N4O3 coordinating ligand: Synthesis, structure and magnetic properties , 2009 .
[39] Dong Guo,et al. Co(II) molecular square with single-molecule magnet properties. , 2009, Inorganic chemistry.
[40] S. Trudel,et al. Magnetic frustration and spin disorder in isostructural M(mu-OH2)2[Au(CN)2]2 (M = Mn, Fe, Co) coordination polymers containing double aqua-bridged chains: SQUID and microSR studies. , 2009, Inorganic chemistry.
[41] Liviu F Chibotaru,et al. Structure, magnetism, and theoretical study of a mixed-valence Co(II)3Co(III)4 heptanuclear wheel: lack of SMM behavior despite negative magnetic anisotropy. , 2008, Journal of the American Chemical Society.
[42] R. C. Rocha,et al. Synthesis, structure, and electronic properties of a dimer of Ru(bpy)2 doubly bridged by methoxide and pyrazolate. , 2008, Inorganic chemistry.
[43] Alexander M. Whyte,et al. Cobalt(II) citrate cubane single-molecule magnet. , 2008, Inorganic chemistry.
[44] S. Bhattacharya,et al. Catechol oxidase activity of a series of new dinuclear copper(II) complexes with 3,5-DTBC and TCC as substrates: syntheses, X-ray crystal structures, spectroscopic characterization of the adducts and kinetic studies. , 2008, Inorganic chemistry.
[45] W. Wernsdorfer,et al. A mixed-valence Co7 single-molecule magnet with C3 symmetry. , 2007, Chemical communications.
[46] O. Fabelo,et al. Unusual (μ-aqua)bis(μ-carboxylate) Bridge in Homometallic M(II) (M = Mn, Co and Ni) Two-Dimensional Compounds Based on the 1,2,3,4-Butanetetracarboxylic Acid: Synthesis, Structure, and Magnetic Properties , 2007 .
[47] Hong Liang,et al. A single-molecule-magnetic, cubane-based, triangular Co(12) supercluster. , 2007, Angewandte Chemie.
[48] W. Wernsdorfer,et al. Ferromagnetic cobalt metallocycles. , 2006, Inorganic chemistry.
[49] J. Reedijk,et al. Synthetic models of the active site of catechol oxidase: mechanistic studies. , 2006, Chemical Society reviews.
[50] A. Spek,et al. Catecholase activity of a copper(II) complex with a macrocyclic ligand: unraveling catalytic mechanisms. , 2006, Chemistry.
[51] W. Wernsdorfer,et al. An azido-bridged disc-like heptanuclear cobalt(II) cluster: towards a single-molecule magnet. , 2006, Chemical communications.
[52] W. Wernsdorfer,et al. Slow relaxation of magnetisation in an octanuclear cobalt(II) phosphonate cage complex. , 2005, Chemical communications.
[53] P. Siegbahn. The catalytic cycle of catechol oxidase , 2004, JBIC Journal of Biological Inorganic Chemistry.
[54] S. Teat,et al. Synthesis and characterization of a cobalt(II) single-molecule magnet. , 2003, Angewandte Chemie.
[55] M. Giorgi,et al. Catechol oxidase activity of dicopper complexes with N-donor ligands , 2003 .
[56] V. Pecoraro,et al. Catalytic oxidation of 3,5-Di-tert-butylcatechol by a series of mononuclear manganese complexes: synthesis, structure, and kinetic investigation. , 2003, Inorganic chemistry.
[57] R. Mukherjee,et al. Catecholase activity of dinuclear copper(II) complexes with variable endogenous and exogenous bridge , 2002 .
[58] L. Rossi,et al. Catecholase activity of a series of dicopper(II) complexes with variable Cu-OH(phenol) moieties. , 2002, Inorganic chemistry.
[59] H. Pritzkow,et al. Tuning the activity of catechol oxidase model complexes by geometric changes of the dicopper core. , 2002, Chemistry.
[60] D. Busch,et al. Topologically constrained manganese(III) and iron(III) complexes of two cross-bridged tetraazamacrocycles. , 2001, Inorganic chemistry.
[61] E. Monzani,et al. Mechanistic, Structural, and Spectroscopic Studies on the Catecholase Activity of a Dinuclear Copper Complex by Dioxygen , 1999 .
[62] M. Albrecht,et al. Sensitive Valence Tautomer Equilibrium of Paramagnetic Complexes [(L)Cun+(Qn−)] (n=1 or 2; Q=Quinones) Related to Amine Oxidase Enzymes , 1999 .
[63] B. Krebs,et al. Biochemical and spectroscopic characterization of catechol oxidase from sweet potatoes (Ipomoea batatas) containing a type‐3 dicopper center 1 , 1998, FEBS letters.
[64] Gus J. Palenik,et al. Bond Valence Sums in Coordination Chemistry. A Simple Method for Calculating the Oxidation State of Cobalt in Complexes Containing Only Co-O Bonds. , 1998, Inorganic chemistry.
[65] E. Monzani,et al. Tyrosinase Models. Synthesis, Structure, Catechol Oxidase Activity, and Phenol Monooxygenase Activity of a Dinuclear Copper Complex Derived from a Triamino Pentabenzimidazole Ligand. , 1998, Inorganic chemistry.
[66] Michael O'Keeffe,et al. Bond-valence parameters for solids , 1991 .
[67] E. Sinn,et al. Oxoperoxo(citrato)- and dioxo(citrato)vanadates(V): synthesis, spectra, and structure of a hydroxyl oxygen bridged dimer K2[VO(O2)(C6H6O7)]2.2H2O , 1989 .
[68] I. D. Brown,et al. Bond‐valence parameters obtained from a systematic analysis of the Inorganic Crystal Structure Database , 1985 .