The impact of counterion on the metastable state properties of nitrosyl ruthenium complexes
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[1] V. Komarov,et al. Tuning the structure and photoinduced linkage isomerism of tetrapyridine nitrosyl ruthenium(ii) complexes by changing the trans-to-NO coordinated ligand , 2020 .
[2] M. Imlau,et al. Combining photoinduced linkage isomerism and nonlinear optical properties in ruthenium nitrosyl complexes. , 2019, Acta crystallographica Section B, Structural science, crystal engineering and materials.
[3] D. Schaniel,et al. Room-Temperature Photogeneration of Nitrosyl Linkage Isomers in Ruthenium Nitrosyl Complexes. , 2019, Chemistry.
[4] J. Skelton,et al. Photocrystallographic Studies on Transition Metal Nitrito Metastable Linkage Isomers: Manipulating the Metastable State , 2019, Accounts of chemical research.
[5] M. Imlau,et al. Nonlinear optical organic-inorganic crystals: synthesis, structural analysis and verification of harmonic generation in tri-(o-chloroanilinium nitrate). , 2019, Acta crystallographica. Section A, Foundations and advances.
[6] N. Kuratieva,et al. High thermal stability of the Ru–ON (MS1) linkage isomer of the ruthenium nitrosyl complex [RuNO(Py)4F](ClO4)2 with the trans NO–Ru–F coordinate , 2018 .
[7] K. Kubo,et al. Supramolecular self-assembly for designing non-centrosymmetric crystals based on Keggin polyoxometallates and crown ether. , 2018, Dalton transactions.
[8] C. García-Ruiz,et al. The discrimination of 72 nitrate, chlorate and perchlorate salts using IR and Raman spectroscopy. , 2018, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[9] I. Zilberberg,et al. The Effect of trans Ligands in the NO‐Linkage Reverse Isomerization for Ruthenium–Nitrosyl–Tetraammine Complexes: A DFT Study , 2017 .
[10] Peng-Fei Liu,et al. Centrosymmetric to noncentrosymmetric structural transformation of new quaternary selenides induced by isolated dimeric [Sn2Se4] units: from Ba8Ga2Sn7Se18 to Ba10Ga2Sn9Se22 , 2017 .
[11] M. Lorenc,et al. Two-Step Photon Absorption Driving the Chemical Reaction in the Model Ruthenium Nitrosyl System [Ru(py)4Cl(NO)](PF6)2·(1)/2H2O. , 2016, Inorganic chemistry.
[12] N. Kuratieva,et al. Photocrystallographic, Spectroscopic, and Calorimetric Analysis of Light-Induced Linkage NO Isomers in [RuNO(NO2)2(pyridine)2OH]† , 2015 .
[13] I. Dixon,et al. Establishing the Two-Photon Linkage Isomerization Mechanism in the Nitrosyl Complex trans-[RuCl(NO)(py)4](2+) by DFT and TDDFT. , 2015, Inorganic chemistry.
[14] E. Yagubskii,et al. The first photochromic bimetallic assemblies based on Mn(III) and Mn(II) Schiff-base (salpn, dapsc) complexes and pentacyanonitrosylferrate , 2015 .
[15] G. Sheldrick. SHELXT – Integrated space-group and crystal-structure determination , 2015, Acta crystallographica. Section A, Foundations and advances.
[16] M. Romero,et al. Molecular materials for switchable nonlinear optics in the solid state, based on ruthenium-nitrosyl complexes , 2013 .
[17] T. Woike,et al. Structural influence on the photochromic response of a series of ruthenium mononitrosyl complexes. , 2012, Inorganic chemistry.
[18] N. Lehnert,et al. Synthesis, spectroscopic analysis and photolabilization of water-soluble ruthenium(III)-nitrosyl complexes. , 2012, Dalton transactions.
[19] R. Shibaeva,et al. 1D chain coordination assembly of [Mn4(hmp)6(NO3)2]2+ single-molecule magnets linked by the photochromic [FeNO(CN)5]2− precursor , 2011 .
[20] B. Feringa,et al. 5. Chiroptical Molecular Switches , 2011 .
[21] E. Yagubskii,et al. Photochromic single-molecule magnets based on oxocarboxylate Mn12 clusters and mononitrosyl Ru complexes , 2011 .
[22] E. Yagubskii,et al. Bifunctional supramolecular systems on the platform of p-sulfonatothiacalix[4]arene containing photochromic mononitrosyl Ru (II) and paramagnetic aqua Gd or Dy complexes , 2010 .
[23] B. Delley,et al. [Ru(py)4Cl(NO)](PF6)2.0.5H2O: a model system for structural determination and ab initio calculations of photo-induced linkage NO isomers. , 2009, Acta crystallographica. Section B, Structural science.
[24] Yang-guang Li,et al. Bimetallic cyanido-bridged magnetic materials derived from manganese(III) Schiff-base complexes and pentacyanidonitrosylferrate(II) precursor , 2009 .
[25] Lina Carlini,et al. Photoenhancement of lifetimes in CdSe/ZnS and CdTe quantum dot-dopamine conjugates. , 2009, Physical chemistry chemical physics : PCCP.
[26] T. Woike,et al. Necessary conditions for the photogeneration of nitrosyl linkage isomers. , 2009, Physical chemistry chemical physics : PCCP.
[27] E. Yagubskii,et al. The photochromic paramagnet derived from polyoxometalate [Cr(OH)6Mo6O18]3− and ruthenium mononitrosyl complex [RuNO(en)2Cl]2+ , 2009 .
[28] Richard J. Gildea,et al. OLEX2: a complete structure solution, refinement and analysis program , 2009 .
[29] Dylan Jayatilaka,et al. Hirshfeld surface analysis , 2009 .
[30] E. Yagubskii,et al. Synthesis, structure, and properties of the [RuNO(NH3)5][Co(CN)6] complex containing a photochromic cation , 2008 .
[31] E. Yagubskii,et al. Photoinduced nitrosyl linkage isomers in complexes based on the photochromic cation [RuNO(NH3)5]3+ with the paramagnetic anion [Cr(CN)6]3− and the diamagnetic anions [Co(CN)6]3− and [ZrF6]2− , 2007 .
[32] E. Yagubskii,et al. Bifunctional Materials Based on the Photochromic Cation [RuNO(NH3)5]3+ with Paramagnetic Metal Complex Anions , 2006 .
[33] E. Yagubskii,et al. Photochromic Molecular Material Based on Anderson–Evans Polyoxometalate $$\hbox{[}\hbox{Cr}\hbox{(OH)}_{6}\hbox{Mo}_{6}\hbox{O}_{18}\hbox{]}^{3-}$$ and Ruthenium Mononitrosyl Complexes $$\hbox{[}\hbox{RuNO}\hbox{(}\hbox{NH}_{3}\hbox{)}_{4}\hbox{(X)}\hbox{]}^{n+}\hbox{(}\hbox{X}=\hbox{NH}_{3}, \hbox{ , 2006 .
[34] P. J. Aymonino,et al. Infrared spectra of K 2 [RuCl 5 NO] in two excited metastable states and the evidence for the NO linkage photoisomerization of metastable state I (MSI) in [RuX 5 NO] 2- (X=Cl, CN) , 2002 .
[35] J. Baran,et al. Novel nonlinear optical crystals of noncentrosymmetric structure based on hydrogen bonds interactions between organic and inorganic molecules , 2002 .
[36] Philip Coppens,et al. Photoinduced linkage isomers of transition-metal nitrosyl compounds and related complexes. , 2002, Chemical reviews.
[37] E. Coronado,et al. Bimetallic cyanide-bridged complexes based on the photochromic nitroprusside anion and paramagnetic metal complexes. Syntheses, structures, and physical characterization of the coordination compounds [Ni(en)2]4[Fe(CN)5NO]2[Fe(CN)6]x5H2O, [Ni(en)2][Fe(CN)5NO]x3H2O, [Mn(3-MeOsalen)(H2O)]2[Fe(CN)5NO], , 2001, Inorganic chemistry.
[38] A. Ishikawa,et al. Light-induced metastable states in nitrosyl–ruthenium complexes containing ethylenediamine and oxalate ion ligands , 2000 .
[39] H. Homborg,et al. Synthese und Eigenschaften von (Acido)(nitrosyl)phthalocyaninato(2–)ruthenium , 1998 .
[40] T. Woike,et al. The existence of light-induced long-lived metastable states in different Xn[Fe(CN)5NO]·yH2O crystals, powders and solutions , 1989 .
[41] F. L. Hirshfeld. Bonded-atom fragments for describing molecular charge densities , 1977 .
[42] J. Enemark,et al. Principles of structure, bonding, and reactivity for metal nitrosyl complexes , 1974 .
[43] P. Ford. Properties and reactions of ruthenium(II) amine complexes , 1970 .