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1.
Transition Metal Complexes of 1,1,3,3-Tetrakis(dimethylamino)-1λ5,3λ5-Diphosphete 1,1,3,3-Tetrakis(dimethylamino)-1λ5,3aλ5-diphosphete, 1 , reacts with W(CO)6 to yield the isomeric complexes {1,1,3,3-tetrakis(dimethylamino)-1λ5,3λ5-diphosphete}(pentacarbonyl)tungsten 4 and {1,1,3,3-tetrakis(dimethylamino)-1,4-dihydro-1λ5,3λ5-[1,3]diphosphetium}(pentacarbonyl)tungsten 5 . With Cr(CO)6 the complex {1,1,3,3-tetrakis(dimethylamino)-1λ5,3λ5-diphosphete}(pentacarbonyl)chromium 6 is formed. From the reaction products of Fe3(CO)12 and Fe2(CO)9 with 1 the complex {1,1,3,3-tetrakis(dimethylamino)-1λ5,3λ5-diphosphete}(pentacarbonyl)iron 7 could be isolated. Properties, nmr, ir and mass spectra of the new compounds are reported. 6 and 7 were characterized by X-ray structure determinations.  相似文献   

2.
1,1,3,3-Tetrakis(dimethylamino)-1λ5,3λ5-diphosphete as Ligand in Coordination Compounds 1,1,3,3-Tetrakis(dimethylamino)-1λ5,3λ5-diphosphete, 1 , reacts with GeCl2 · 1,4-dioxane, SnCl2, and (CO)5W(Z-cyclooctene) to give the complexes {HCP[N(CH3)2]2}2 · GeCl2, 3 , {HCP[N(CH3)2]2}2 · SnCl2, 4 , and {HCP[N(CH3)2]2}2 · W(CO)5, 5 , respectively. The n.m.r., mass, and i.r. spectra of the new compounds as well as the crystal and molecular structures of 3 and 4 are reported and the bonding situation in compounds 3–5 is discussed.  相似文献   

3.
Mono- and Bis(difluorophosphoranyl)ethylene, n-Hexylidene-fluorophosphorane, and a 2,4-Di-n-pentyl-1λ5, 3λ5 -diphosphete Bis(diethylamino)phosphanylethylene, 1 , is converted by SF4 into bis(diethylamino)difluorophosphoranylethylene, 2. Analogously trans-1,2-bis(diphenylphosphanyl)ethylene, 3 , is converted into trans-1,2-bis(difluorodiphenylphoranyl)ethylene, 4. 2 reacts with n-butyllithium to give n-hexylidene-bis(diethylamino)fluorophosphorane, 5. With more n-butyllithium, the main product n-hexylidene-bis(diethylamino)-n-butylphosphorane, 7 , and the by-product 2,4-di-n-pentyl-1,1,3,3-tetrakis(diethylamino)-1λ5, 3λ5 -diphosphete, 8 , are formed. With t-butyllithium 2 yields 3,3-dimethyl-butylidene-bis(diethylamino)fluorophosphorane, 6. All new compounds 1, 2, 4–8 are characterized by their nmr and ir spectra.  相似文献   

4.
Diphosphabenzenes. VI. New 1λ5, 3λ5-[1,3]Diphosphinines with Thio and Seleno Phosphonic Acid Groups – Preparation, Crystal Structure, NMR Data, and Coordination to PdII Preparation of N,N,N′,N′-tetraethyl-P-phenylethinyl phosphonothioacid diamide ( 2 ) and the corresponding phosphonoselenoacid diamide ( 3 ) are described. 2 and 3 react with 1,1,3,3-tetrakis(dimethylamino)-1λ5,3λ5-diphosphete ( 1 ) to yield 1λ5,3λ5-[1,3]diphosphinine derivatives 4 and 5 . With (bzl)2Cl2Pd 5 forms the coordination compound 6 . All new compounds 2–6 are characterized by their nmr and ir spectra, the structures of 4–6 are further elucidated by X-ray structural analyses.  相似文献   

5.
A Cyclic Methylenediphosphinic Acid: 1,3‐Dihydroxy‐1,3‐dioxo‐1,2,3,4‐tetrahydro‐1λ5,3λ5‐[1,3]diphosphinine Strong acids protonate 1,3‐bis(dimethylamino)‐1λ5,3λ5‐[1,3]diphosphinine ( 5 ) to give the corresponding cation. The protonation is followed by hydrolytic cleavage of the dimethylamino groups resulting in the formation of the cyclic methylenediphosphinic acid ( 6 ).  相似文献   

6.
Hydrolysis of 1,1,3,3-Tetrakis(dimethylamino)-1λ5, 3λ5 -diphosphete Hydrolysis of 1,1,3,3-Tetrakis(dimethylamino)-1λ5, 3λ5 -diphosphet ( 2 ) yields in the first step Bis(dimethylamino)phosphorylmethyliden-methyl-bis(dimethylamino)phosphorane ( 5 ). In the second step Bis(dimethylamino)phosphoryl-methyl(dimethylamino)phosphosphonylmethylen ( 6 ) is the main product of hydrolysis. In addition small amounts of methylphosphonic-bis(dimethylamide) ( 7 ) are formed. Properties, nmr and mass spectra of 5 and 6 are described, their mechanism of formation is discussed.  相似文献   

7.
1,1,3,3,5,5-Hexakis(dimethylamino)-λ5-[1,3,5]triphosphinine – Synthesis, Crystal Structure, and NMR Data Preparation of 1,1,3,3,5,5-hexakis(dimethylamino)-λ5-[1,3,5]triphosphinine ( 4 ) and the path of its formation from methyl-bis(dimethylamino)difluorophosphorane ( 1 ) and n-butyllithium are described. The chemical behaviour of compounds of type [R2P=CH–]n is compared with that of the isoelectronic dichlorophosphazenes [Cl2P=N–]n. The structure of 4 is eludicated by n.m.r. spectra and X-ray structural analysis.  相似文献   

8.
Reaction of 1,′, 3,3′-Tetrakis(dimethylamino)-1λ5,3λ5-diphosphete with S? H Acidic Compounds. Reaction of 1,′,3,3′-tetrakis(dimethyl-amino)-1λ5,3λ5-diphosphete ( 1 ) with hydrogen sulfide yields bis(dimethylamino)thiophosphonylmethylidene-methyl-bis(dimethylamino)phosphorane ( 5 ).Water eliminates dimethylamine from 5 and forms bis(dimethyl-amino)thiophosphonyl-methyl(dimethylamino)phosphonylmethylene 6 . The reaction of 1 with ethylmercaptane yields the 2,4-bis(ethylthio)-derivative of 1 , i.e. compound 8 and bis(dimethylamino)phosphanylmethylidene-methyl-bis(dimethylamino)phosphorane ( 9 ), which is also formed from 1 and 2,4,6-trimethylphenylphosphane. Thiophenol protonates 1 to give the corresponding cation which is isolated as its thiophenolate, 10 . Properties, nmr and mass spectra of 5, 6 and 8 – 10 are described and discussed.  相似文献   

9.
Diphosphabenzenes. VII. Reactions of 1,1,3,3‐Tetrakis(dimethylamino)‐1 λ5, 3 λ5‐diphosphete with 5‐Cyano‐1‐pentine and 2‐(Cyanomethyl)‐1‐methylpyrrol 5‐Cyano‐1‐pentine reacts with the equimolar amount of the λ5‐diphosphete 1 to give the λ5‐diphosphinine (λ5‐diphosphabenzene) ( 3 ), while reaction with the double equimolar amount of 1 yields the λ5‐diphosphinine ( 4 ). The acyclic compount 6 is the main product of the reaction between 1 and 2‐(cyanomethyl)‐1‐methylpyrrol, 5 . Melting points of 4 · CH3CN and 6 , and mass, nmr and ir spectra of 3 , 4 , and 6 are reported. The crystal structure of 4 · CH3CN shows an open‐chain ylidic CPCP‐sequence, which is linked to a λ5‐diphosphinine via an ethylene bridge. The X‐ray structure analysis of 6 confirms the existence as an acyclic conjugated double ylid.  相似文献   

10.
Palladium(II) Complexes of 1,1,3,3,5,5‐Hexakis(dimethylamino)‐λ5‐[1,3,5]triphosphinine 1,1,3,3,5,5‐Hexakis(dimethylamino)‐1λ5‐3λ5‐5λ5‐[1,3,5]triphosphinine ( 5 ) reacts with (benzonitrile)2PdCl2 to give the chelate complex dichloro(dodeca‐N‐methyl‐1λ5,3λ5,5λ5‐1,3,5‐triphosphinine‐1,1,3,3,5,5‐hexaamin‐C2,C4)palladium ( 6 ). In a pyridine‐d5 solution of 6 the complex dichloro(dodeca‐N‐methyl‐1λ5,3λ5,5λ5‐1,3,5‐triphosphinine‐1,1,3,3,5,5‐hexaamin‐C2)((2H5)pyridine‐N)palladium ( 7 ) is formed. The solute 7 could not be isolated as a solid, because elimination of the solvent regenerates 6 quantitatively. Properties, nmr and ir spectra of 6 and 7 are reported. 6 is characterized by the results of an X‐ray structural analysis.  相似文献   

11.
P,P′-(2,5-Dihydroxy-3,6-dimethyl-2,5-dioxo-2λ5,5λ5-[1,4,2,5]dioxadiphosphinane-2,5-diyl)-bis-phosphonic Acid The tetrahydrate 1 of the title compound crystallizes in the monoclinic space group P21/c with a = 845.8, b = 1 098, c = 981.7 pm, β = 113.02° and Z = 2. The anions of the oxonium compound (H3O+ · H2O)2(C4H10O12P42?) are layered by hydrogen bridges. The 1H, 13C and 31P NMR spectra (4 and 5 spin systems) are discussed.  相似文献   

12.
Reactions of λ5-Diphosphetes with COS and CO2. Dihydro-λ5-Phosphetes 1,1,3,3-Tetrakis(dimethylamino)-1λ5,3λ5-diphosphete, 1 , reacts with COS to yield the (3-oxo-3,4-dihydro-1λ5-phosphete-2-yl)-phosphonothioic bis(dimethylamide) 7 . Reaction of dimethyl substituted 1 , i.e. 1,1,3,3-tetrakis(dimethylamino)-2,4-dimethyl-1λ5,3λ5-diphosphete 4 , with COS and CO2 results in (3-oxo-2,3-dihydro-1λ5-phosphete-2-yl)-phosphonothioic bis(dimethylamide) 9 , and (3-oxo-2,3-dihydro-1λ5-phosphete-2-yl)-phosphonic bis(dimethylamide) 10 , respectively. Reaction mechanisms are suggested. 7, 9 and 10 are characterized by their properties, and their nmr, mass-, and ir-spectra. The results of X-ray structural analyses of 9 and 10 are reported and discussed.  相似文献   

13.
A (Phosphonioalkinyl)- and an Acetyl(tetracarbonyl)iron From the reaction of 1,1,3,3-tetrakis(dimethylamino)-1λ5,3λ5-diphosphete, 1 , and Fe(CO)5 {[bis(dimethylamino)phosphoryl-methyl]-bis(dimethylamino)phosphonioethinyl}(tetracarbonyl)iron, 4 , and {1,1,3,3-tetrakis(dimethylamino)-1,4-dihydro- 1λ5,3λ5-[1,3]diphosphetium-2-carbonyl}(tetracarbonyl)-iron, 5 , can be isolated as crystalline products. The nmr, mass and ir spectra of the two compounds as well crystal and molecular structures of 4 are reported. The bonding situation in compounds 4 and 5 are discussed in detail.  相似文献   

14.
Reactive E = C(pp)π-Systems. XLII [1]. Novel Coordination Compounds of 2-(Diisopropylamino)-1-phosphaethyne: [{η4-(iPr2NCP)2}Ni{η2-(iPr2NCP)}], [(Ph3P)2Pt{η2-(iPr2NCP)}], and [Co2(CO)622-(iPr2NCP)}] 2-(Diisopropylamino)-phosphaethyne iPr2N? C?P ( 2 ) reacts with the Ni(0)-complexes [Ni(1,5-cyclooctadiene)2] and [Ni(CO)3(1-azabicyclo[2.2.2]octane)], respectively, to give the novel complex [{η4-(iPr2NCP)2}Ni{η2-(iPr2NCP)}] ( 5 ), with the 1,3-diphosphacyclobutadiene derivative and 2 (side-on) as π-ligands. The molecular structure of 5 determined by X-ray diffraction on single crystals proves the spin systems and rotational barriers deduced from NMR-data (1H, 13C-, 31P). The PC distances of the four-membered ring of 1.817(2) and 1.818(2) Å – as expected – are considerably longer than the PC bond of the η2-coordinated phosphaalkyne 2 [1.671(2) Å]. – In the reactions of 2 with [(Ph3P)2Pt(C2H4)] or [Co2(CO)8] the ligand properties of 2 resemble those of alkynes affording the complexes [(Ph3P)2Pt{η2-(iPr2NCP)}] ( 7 ) with side-on coordinated 2 and [Co2(CO)622-(iPr2NCP)}] with 2 acting as a 4e donor bridge in quantitative yield. In attempts to prepare copper(I) complexes of the aminophosphaalkyne 2 by reaction with CuCl or CuI the only isolable product formed in reasonable amounts under the influence of air and moisture is the 1 λ3, 3 λ5-diphosphetene (iPr2N) ( 10 ) (isolated yield: ca. 20%). The crystal structure analysis of 10 indicates a strong structural relationship to the diamino-2-phosphaallyl cation [Me(iPr2N)]+ ( 12 ), the 1,3-diphosphacyclobutadiene ligand (iPr2NCP)2 in the binuclear complex [{η1, μ2-(iPr2NCP)2}Ni2(CO)6] ( 3a ) as well as to the heterocycles (dme)2LiOE2′ (E′ = S, 11a ; E′ = Se, 11b ) prepared by Becker et al. [11b, 35].  相似文献   

15.
Synthesis, Structure, and Magnetic Properties of [CrCl(-μCl)(TMEDA)]2 The title complex [CrCl(μ-Cl)(TMEDA)]2 ( 1 ) is obtained in an equimolar reaction of CrCl2(THF) with TMEDA in high yield. 1 crystallises in the monoclinic space group P21/c with a = 843.2(2), b = 1 109.(2), c = 1 147.4(3) pm, β = 102.99(2)° and Z = 2. The molecular structure of 1 contains two, slightly distorted quadratic pyramidal CrL5-subunits, which are linked via two unsymmetrical Cl-bridges. The μ-Cl-functions take the apical position of one and a basal position of the second CrL5-unit, wherein the apical Cr–Cl bond (277.6(1) pm) is destinctly longer than the basal Cr–Cl bond (240.6(1) pm). The terminal Cr–Cl bond is still shorter (237.5(1) pm). The Cr…Cr distance is far beyond any bonding interaction. This is confirmed by means of magnetic susceptibility measurements, which show four unpaired electrons per Cr centre; however, a small antiferromagnetic coupling of J/k = ?7.3 K can be calculated. This coupling is suggested to be originated by a 90°-σ-superexchange via the asymmetric μ-Cl functions.  相似文献   

16.
Preparation and Properties of Tetragonal α-Di(phthalocyaninato(1?))praseodymium(III)-polyhalides; Crystal Structure of α-[Pr(Pc?)2]Br1.5 Brown red di(phthalocyaninato(1?))-praseodym(III)-polyhalides [Pr(Pc?)2]Xy (X = Br, I) of variable composition (1 ≤ y ≤ 2.5) are formed by (electro)chemical oxidation of [Pr(Pc2?)2]?. The thermical decomposition of these polyhalides at 250°C yields partially oxidized, green α-[PrPc?Pc2?]. Due to strong spin–spin coupling of the phthalocyanin-π-radicals only PrIII contributes to the magnetic moment of ca. 3.0 B.M. for all complexes. Green metallic prisms of [Pr(Pc?)2]Br1.5 crystallize in the tetragonal α-modification: space group P4/nnc with a = 19.634(5) Å, c = 6.485(2) Å; Z = 2. In the sandwich complex PrIII is eightfold coordinated by the isoindoline N-atoms of the two staggered (41°), nearly planar Pc?- ligands. The quasi-onedimensional character of the structure along [001] is due to the infinite columns of Pc? ligands. The superperiod along [001] is a consequence of the distribution of the Pr atoms onto two incompletely filled crystallographic positions at a distance of c/2 and the disordered chains of the bromine atoms extending in the same direction. Powder diffractograms of Pr(Pc )2Br2, [Pr(Pc?)2]I2 und [PrPc Pc2?] confirm the tetragonal α-modification of these complexes, too. The content of tribromide correlates with the population of the Pr(2)-site. In the UV-VIS-NTR absorption spectrum of a thin film of Pr(Pc )2Br, the intense bands at 13.9 and 19.5 kK are assigned to the B and Q transition, respectively. The D band at 9. kK is characteristic for isolated dimeric Pc?-π-radicals. Due to increasing electron delocalisation as a result of the growing columns the D band is shifted to lower energy appearing successively at 6.05 and 3.3 kK. The mir and resonance Raman (RR) spectra of α-[Pr(Pr?)2]Xy, (X = Br, I) show the well known diagnostic bands for Pc?-π-radicals. Thc RR spectrum of the polyiodide is dominated by the overtone progression of the totally symmetric (I-I) stretching vibration of the triiodide at 108cm?1. The FT-Raman spectra are also marked by the totally symmetric stretching vibration of the polyhalides (Br3 : 145cm 1; 13?:105cm?1; I5? 151 cm?1).  相似文献   

17.
Protonation of 1,1,3,3,5,5‐Hexakis(dimethylamino)‐λ5‐[1,3,5]triphosphinine. Cyclotrimethylenetriphosphinic Acid. NMR Data, Crystal Structures, and Quantum Chemical Calculations Preparation of 1,1,3,3,5,5‐hexakis(dimethylamino)‐1,2‐dihydro‐3λ5,5λ5‐[1,3,5]triphosphininium‐tetrafluoroborate ( 3 ) und 1,1,3,3,5,5‐hexakis(dimethylamino)‐λ5‐[1,3,5]triphosphinanetriium‐tris(tetrafluoroborate) ( 4 ) from 1,1,3,3,5,5‐hexakis(dimethylamino)‐1λ5,3λ5,5λ5‐triphosphinine 1 and HBF4 · O(C2H5)2 are described. The structures of 3 und 4 are elucidated by n. m. r. and X‐ray structural analyses. By hydrolysis of 4 with conc. hydrochloric acid 1,3,5‐trioxo‐1λ5,3λ5,5λ5‐[1,3,5]triphosphinane‐1,3,5‐triol (cyclotrimethylene‐triphosphinic acid) ( 8 ) is formed. Neutralisation with NaOH yields its sodium salt 9 . 8 and 9 are characterized by their n. m. r. spectra. Quantum chemical calculations have been investigated for the compounds 1 ′– 4 ′ and the trianion 9 . The systems 1 ′– 4 ′ are distinguished from 1 – 4 by the size of the ligands at phosphorus which is reduced from N(CH3)2 to NH2, respectively. The aims of the calculations are to elucidate hybridisations and molecular structures, Lewis or resonance structures, electronic charge distributions and NMR chemical shifts.  相似文献   

18.
Synthesis and Spectroscopical Properties of Di(phthalocyaninato(1?))lanthanidepolybromide; Crystal Structure of α-Di(phthalocyaninato)samariumpolybromide, α-[Sm(Pc)2]Br1.45 and α-Di(phthalocyaninato)samariumperchlorate, α-[Sm(Pc)2](ClO4)0.63 Bronze-coloured di(phthalocyaninato)lanthanidepolybromide, [Ln(Pc?)2]Bry (Ln = La…(? Ce, Pm)…Lu; y > 1.5) is prepared by oxidation of (nBu4N)[Ln(Pc2?)2] with bromine in excess. The UV-VIS-NIR spectra show the typical B and Q1 bands of the Pc? ligand at ~ 14 kK and ~ 20 kK. For the [Ln(Pc?)2]+ cation a NIR(D) band between 9,14 kK (La) and 11,50 kK (Lu) is characteristic for dimeric cofacial Pc? radicals. Within the row La…Lu, there is a linear relationship of the hypsochromic shift of the strong bands and the LnIII radius. In the case of La? Nd the D band shifts successively with longer time of bromination to ~ 3 kK as a result of increasing electron delocalisation. Characteristic vibrational bands are at ~ 1350/1450 cm?1 (IR) and ~ 560/1120/1170/1600 cm?1 (RR). In the FT-Raman spectra the totally symmetric Ln? N stretching vibration between 141 cm?1 (La) and 172 cm?1 (Lu) is selectively enhanced. As shown by α-[Sm(Pc)2]Br1,45 and α-[Sm(Pc)2](ClO4)0,63 only partially ringoxidized complexes are obtained by the anodic oxidation. Both crystallize in the tetragonal space group P4/nnc. The [Sm(Pc)2] molecular building block contains two nearly planar staggered (~41°) Pc rings packed in columns parallel along [001] leading to the quasi-one-dimensional structure. There is a statistical disorder of the SmIII and the ClO4? resp. Br?/Br3? ions over two incompletely filled crystallographic positions for the cation resp. anion. This results in a partial oxidation of the Pc ligand, which in the picture of localized valence states for α-[Sm(Pc)2](ClO4)0,63 corresponds to [SmPc?Pc2?] · 2[Sm(Pc?)2](ClO4). Accepting the same valence state for [Sm(Pc)2]Br1,45 five positive charges are compensated by two Br? and three Br3?. The spectroscopic differences of the partially and fully oxidized complexes are discussed.  相似文献   

19.
P,P′-(2,5-Dimethoxy-3,6-dimethyl-2,5-dioxo-2λ5,5λ5-[1,4,2,5]dioxadiphosphinane-2,5-diyl)-bis-phosphonic acid tetramethylester The title compound 1 is formed by reaction of the corresponding phosphonic acid 2 and orthoformicacidmethylester as a mixture of four stereoisomeres. The RRSS isomer was separated. It crystallizes in the triclinic space group P ?1 with a = 649.2 pm, b = 976.1 pm, c = 1 571.7 pm, α = 80.9°, β = 88.1°, γ = 78.6° and Z = 2. The 31P and 13C NMR spectra (4 and 5 spin systems) are discussed.  相似文献   

20.
Crystal Structures and Spectroscopic Properties of 2λ3‐Phospha‐1, 3‐dionates and 1, 3‐Dionates of Calcium ‐ Comparative Studies on the 1, 3‐Diphenyl and 1, 3‐Di(tert‐butyl) Derivatives A hydrogen‐metal exchange between dibenzoylphosphane and calcium carbide in tetrahydrofuran (THF) followed by addition of the ligand 1, 3, 5‐trimethyl‐1, 3, 5‐triazinane (TMTA) furnishes the binuclear complex bis[(tmta‐N, N′, N″)calcium bis(dibenzoylphosphanide)] ( 1a ) co‐crystallizing with benzene. Similarly, reaction of bis(2, 2‐dimethylpropionyl)phosphane with bis(thf‐O)calcium bis[bis(trimethylsilyl)amide] in 1, 2‐dimethoxyethane (DME) gives bis(dme‐O, O′)calcium bis[bis(2, 2‐dimethylpropionyl)phosphanide] ( 1b ) in high yield. The carbon analogues 1, 3‐diphenylpropane‐1, 3‐dione (dibenzoylmethane) or 2, 2, 6, 6‐tetramethylheptane‐3, 5‐dione (dipivaloylmethane) and bis(thf‐O)calcium bis[tris(trimethylsilylmethyl)zincate] in DME afford bis(dme‐O, O′)calcium bis(dibenzoylmethanide) ( 2a ) and the binuclear complex (μ‐dme‐O, O′)bis[(dme‐O, O′)calcium bis(dipivaloylmethanide)] ( 2b ), respectively. Dialkylzinc formed during the metalation reaction shows no reactivity towards the 1, 3‐dionates 2a and 2b . Finally, from the reaction of the unsymmetrically substituted ligand 2‐(methoxycarbonyl)cyclopentanone and bis(thf‐O)calcium bis[bis(trimethylsilyl)amide] in toluene, the trinuclear complex 3 is obtained, co‐crystallizing with THF. The β‐ketoester anion bridges solely via the cyclopentanone unit.  相似文献   

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