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Monodisperse InP nanocrystals were prepared by a facile one-pot solvothermal route via the pyrolysis reaction between indium chloride and tris(dimethylamino)phosphine at relatively low temperatures (150-180 C). The InP nanocrystals after size-selective precipitation had a well-crystallized zinc blende structure, a narrow size distribution, and distinguishable absorption peaks. Application of HF treatment in combination with photoetching increased their emission efficiency to 58% while their emission wavelengths were tunable from green to red. Copyright

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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Electric Literature of 1608-26-0, Chemistry can be defined as the study of matter and the changes it undergoes. You’ll sometimes hear it called the central science because it is the connection between physics and all the other sciences, starting with biology.1608-26-0, Name is Tris(dimethylamino)phosphine
, molecular formula is P[N(CH3)2]3. In a patent, introducing its new discovery.

The equilibrium constant Kk of H-bond complex formation between some O-basic compounds (N-methyl morpholine-N-oxide, N-methyl-caprolactame, hexamethyl phosphortriamide, dimethyl sulfoxide) and several OH-group containing compounds (phenole, glucose, xylose, cellobiose, cellulose) has been determined in the presence of LiCl by UV-spectroscopic measurements.Kk-values obtained were compared with those of the appropriate LiCl-free systems.With xylase, no UV absorption band indicating complexation has been found, neither in the presence nor in the absence.With all the o ther OH-group containing compounds, Kk is significantly increased by addition of LiCl.The results were discussed on the basis of specific solvation phenomena and acid-base interactions.

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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A catalyst don’t appear in the overall stoichiometry of the reaction it catalyzes, but it must appear in at least one of the elementary reactions in the mechanism for the catalyzed reaction. 1608-26-0, Name is Tris(dimethylamino)phosphine
, molecular formula is P[N(CH3)2]3. In a Article,once mentioned of 1608-26-0, Application In Synthesis of Tris(dimethylamino)phosphine

A cyclic nucleotide model system (3) for P(V) cAMP-substrate or cAMP-enzyme adducts is shown by 1H NMR analysis to be totally in a twist conformation (3b).

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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1H, 11B, 13C, 15N, 31P and 77Se NMR spectra were obtained for 1,3-(dioxa, oxaza or diaza)-2-phospholanes and their sulfur, selenium and borane adducts. The relative sign of the 3J(1H, 31P)/2/(13C, 31P) coupling constants was found to be positive in the sulfur and selenium adducts for the methylene and methyl groups. Conversely, for the compound with a phosphorus lone pair and in the borane adducts this sign changes for the methylene groups. It was shown that the 31P NMR spectra recorded by the CPMG or INEPT-HEED pulse sequences can be used for observation of the 15N-31P coupling constants. In all the investigated compounds the spin-lattice relaxation of 31P is controlled by the spin-rotation mechanism. The dipole-dipole 31P-11B interactions can provide less than 20% of the relaxation rate in compounds containing the BH3 group. The transverse 31P relaxation is dominated by the scalar contribution. Copyright

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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Novel processes for preparing optically active cyclopentanones 1 which are useful for the preparation of benzindene Prostaglandins and novel cyclopentanones are provided. The invention also provides novel processes of preparing benzindene Prostaglandins and novel intermediates for benzindene Prostaglandins.

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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The possibility of regioselective cyclobisphosphorylation of nonsymmetrical bisphenols was shown for the 1,7-dihydroxynaphthalene-phosphorous acid triamide system. The structure and essential chemical properties of the first nonsymmetrical phosphacyclophane were studied. New data demonstrating peculiar features of bisphenol diamidophosphites were obtained.

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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In an article, published in an article, once mentioned the application of 1608-26-0, Name is Tris(dimethylamino)phosphine
,molecular formula is P[N(CH3)2]3, is a conventional compound. this article was the specific content is as follows.Formula: P[N(CH3)2]3

Organophosphanes promote the [3+2] cycloaddition reactions of dialkyl (E)-hex-2-en-4-ynedioates and [60]fullerene, giving a series of cyclopenteno-fullerenes 3a-k bearing phosphorus ylides. This cycloaddition reaction is initiated by the attack of nucleophilic phosphanes at the alpha(delta’)-C atom of the dialkyl (E)-hex-2-en-4-ynedioate, which generates a 1,3-dipolar species. These 1,3-dipoles then react with C 60 followed by intramolecular cyclization to give cyclopenteno-fullerenes in moderate-to-good yields. In a cyclic voltmmetry study, these novel fullerenes show a larger cathodic shift in their first reduction potential relative to [6,6]phenyl-C61 methyl butyrate, which indicates that these new derivatives possess higher LUMO energy levels.

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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1608-26-0, Name is Tris(dimethylamino)phosphine
, molecular formula is P[N(CH3)2]3, belongs to chiral-phosphine-ligands compound, is a common compound. In a patnet, once mentioned the new application about 1608-26-0, Computed Properties of P[N(CH3)2]3

(Chemical Equation Presented) Noncovalent interactions are used to generate a polymeric supramolecular chiral catalyst (see picture). This heterogeneous catalyst, which is based on Feringa’s MonoPhos/RhI system, is formed by orthogonal self-assembly of recognition motifs through hydrogen bonding and ligand-to-metal coordination interactions. It shows excellent asymmetric induction and reusability in the catalysis of the asymmetric hydrogenation of dehydro-alpha-amino acid and enamide derivatives.

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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A catalyst don’t appear in the overall stoichiometry of the reaction it catalyzes, but it must appear in at least one of the elementary reactions in the mechanism for the catalyzed reaction. 1608-26-0, Name is Tris(dimethylamino)phosphine
, molecular formula is P[N(CH3)2]3. In a Article,once mentioned of 1608-26-0, Application In Synthesis of Tris(dimethylamino)phosphine

The P-Te bond length in (tert-C4H9)3PTe of 2.368 Angstroem corresponds to a bond order near 1.5.The distance may be influenced by the tert-C4H9 groups, but the 125Te NMR shifts is well within the common R3PTe range, while 1J(125Te-31P) is about 140 Hz smaller than in other tellurophosphoranes. – Key words: Tellurophosphoranes, X-Ray, 125Te NMR Spectra

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate

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A catalyst don’t appear in the overall stoichiometry of the reaction it catalyzes, but it must appear in at least one of the elementary reactions in the mechanism for the catalyzed reaction. 1608-26-0, Name is Tris(dimethylamino)phosphine
, molecular formula is P[N(CH3)2]3. In a Article,once mentioned of 1608-26-0, Formula: P[N(CH3)2]3

The complexes [Rh(CO)LTp?] {Tp? = HBR3, R = 3,5-dimethylpyrazolyl; L = PPh3 2, PCy3 3, L = P(NMe2)3 4, P(C6H4Me-p)3 5 or P(C6H4Me-m)3 6}, prepared from [Rh(CO)2Tp?] 1 and L, and [Rh(PPh3)2L?] [L? = Tp? 8, Tp 9 or B(pz)4 10 {Tp = HB(pz)3, pz = pyrazolyl}] and [Rh(dppe)Tp?] 11, prepared from [{Rh(mu-Cl)(PPh3)2}2] or [{Rh(mu-Cl)(dppe)}2] and KL?, adopt four-co-ordinate kappa2 structures, confirmed in the cases of 2-4, 6 and 8 by X-ray structural studies. By contrast, complex [Rh(CO){P(OPh)3}Tp?] 7 has a distorted five-co-ordinate square pyramidal structure with a long Rh…N contact [2.764(2) A] in the apical site and an essentially planar Rh(CO)PN2 basal plane. Each complex undergoes fluxional processes on the N MR timescale. One-electron oxidation of 1-11 gives the kappa3 rhodium(II) cations 1+-11+; the crystal structures of salts Of 2+ and 8+ confirm stabilisation of the unusual rhodium(II) oxidation state by axial co-ordination of the third pyrazolyl ring as a result of oxidatively induced kappa2-kappa3 isomerisation. These structures and ESR spectroscopy are consistent with a five-co-ordinate square pyramidal geometry with the unpaired electron in a sigma* Rh-Naxial orbital.

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Reference:
Phosphine ligand,
Chiral phosphine ligands in asymmetric synthesis. Molecular structure and absolute configuration of (1,5-cyclooctadiene)-(2S,3S)-2,3-bis(diphenylphosphino)butanerhodium(I) perchlorate tetrahydrofuran solvate