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1.
The preparation and spectroscopic identification of the complexes NNBe(η2‐N2) and (NN)2Be(η2‐N2) and the energetically higher lying isomers Be(NN)2 and Be(NN)3 are reported. NNBe(η2‐N2) and (NN)2Be(η2‐N2) are the first examples of covalently side‐on bonded N2 adducts of a main‐group element. The analysis of the electronic structure using modern methods of quantum chemistry suggests that NNBe(η2‐N2) and (NN)2Be(η2‐N2) should be classified as π complexes rather than metalladiazirines.  相似文献   

2.
The boron atoms react with carbon monoxide and dinitrogen forming the end-on bonded NNBCO complex in solid neon or in nitrogen matrices. The NNBCO complex rearranges to the (η2-N2)BCO isomer with a more activated side-on bonded dinitrogen ligand upon visible light excitation. (η2-N2)BCO and its weakly CO-coordinated complexes further isomerize to the NBNCO and B(NCO)2 molecules with N−N bond being completely cleaved under UV light irradiation. The geometries, energies and vibrational spectra of the molecules are calculated with quantum chemical methods and the electronic structures are analyzed with charge- and energy-partitioning methods.  相似文献   

3.
The azide bridge complex [(η6-p-cymene)Ru(µ-N3)Cl]2 (2) was prepared from the reaction of sodium azide with [(η6-p-cymene)RuCl]2 in ethanol. The molecular structures and spectroscopic properties of the various azido ruthenium complexes so obtained from the reaction with monodentate and bidentate ligands are described.  相似文献   

4.
The reaction of low-valent ruthenium complexes with 2,6-bis(imino)pyridine ligand, [η2-N3]Ru(η6-Ar) (1) or {[N3]Ru}2(μ-N2) (2) with amine hydrochlorides generates six-coordinate chlorohydro ruthenium (II) complexes with amine ligands, [N3]Ru(H)(Cl)(amine) (4). Either complex 1 or 2 activates amine hydrochlorides 3, and the amines coordinate to the ruthenium center to give complex 4. This is a convenient and useful synthetic approach to form ruthenium complexes with amine and hydride ligands using amine hydrochloride.  相似文献   

5.
The reaction of the complex [{(η6-C6Me6)Ru(μ-Cl)Cl}2] 1 with sodium azide ligand gave two new dimers of the composition [{(η6-C6Me6)Ru(μ-N3)(N3)}2] 2 and [{(η6-C6Me6)Ru(μ-N3)Cl}2] 3, depending upon the reaction conditions. Complex 3 with excess of sodium azide in ethanol yielded complex 2. These complexes undergo substitution reactions with monodentate ligands to yield monomeric complexes of the type [(η6-C6Me6)Ru(X)(N3)(L)] {X = N3, Cl, L = PPh3 (4a, 9a); PMe2Ph (4b, 9b); AsPh3 (4c, 9c); X = N3, L = pyrazole (Hpz) (5a); 3-methylpyrazole (3-Hmpz) (5b) and 3,5-dimethyl-pyrazole (3,5-Hdmpz) (5c)}. Complexes 2 and 3 also react with bidentate ligands to give bridging complexes of the type [{(η6-C6Me6)Ru(N3)(X)]2(μ-L)} {X = N3, Cl, L = 1,2-bis(diphenylphosphino)methane (dppm) (6, 10); 1,2-bis(diphenylphosphino)ethane (dppe) (7, 11); 1,2-bis(diphenylphosphino)propane (dppp) (8, 12); X = Cl, L = 4,4-bipyridine (4,4′-bipy) (13)}. These complexes were characterized by FT-IR and FT-NMR spectroscopy as well as by analytical data.The molecular structures of the representative complexes [{(η6-C6Me6)Ru(μ-N3)(N3)}2] 2, [{(η6-C6Me6)Ru(μ-N3)Cl}2] 3,[(η6-C6Me6)Ru(N3)2(PPh3)] 4a and [{(η6-C6Me6)Ru(N3)2}2 (μ-dppm)] 6 were established by single crystal X-ray diffraction studies.  相似文献   

6.
Reaction of the doubly bridged dinuclear molybdenum complex (Me2C)(Me2Si)[(η5-C5H3)Mo(CO)3]2 (1) with benzonitrile in refluxing xylene afforded complexes (Me2C)(Me2Si)[(η5-C5H3)2Mo2(CO)4(μ-η22(⊥)-NCPh)] (2) (50%) and (Me2C)(Me2Si)[(η5-C5H3)2Mo2(CO)4(μ-η12-NCPh)] (3) (6%) with different coordination of nitrile. The corresponding μ-η22 acetonitrile and propionitrile complexes 4 and 5 could be obtained from the reactions of (Me2C)(Me2Si)(C5H4)2 with (RCN)3Mo(CO)3 (R = Me, Et) in refluxing xylene. Reactions of 1 with isonitriles generated μ-η12-CNR (R = tBu, Ph, C6H11) bridged complexes 6-8 in 53-63% yields. Subsequent reaction of 4 with Ru3(CO)12 yielded two CN bond cleavaged MoRu clusters (Me2C)(Me2Si)(η5-C5H3)2Mo2Ru3(CO)10(μ-CO)(μ3-CMe)(μ4-N) (9) (7%) and [(Me2C)(Me2Si)(η5-C5H3)2]2Mo4Ru6(CO)16(μ-CO)(μ4-CO)23122-NCMe)(μ3-CMe)(μ5-N) (10) (8%). All the new complexes have been fully characterized. The molecular structures of 2, 4, 6, 9, and 10 have been determined by X-ray diffraction analysis.  相似文献   

7.
p-Cymene complexes MCl26-p-cymene)L [M = Ru, Os; L = P(OEt)3, PPh(OEt)2, (CH3)3CNC] were prepared by allowing [MCl(μ-Cl)(η6-p-cymene)]2 to react with phosphites or tert-butyl isocyanide. Treatment of MCl26-p-cymene)L complexes with 1,3-ArNNN(H)Ar triazene and an excess of NEt3 gave the cationic triazenide derivatives [M(η2-1,3-ArNNNAr)(η6-p-cymene)L]BPh4 (Ar = Ph, p-tolyl). Neutral triazenide complexes MCl(η2-1,3-ArNNNAr)(η6-p-cymene) (M = Ru, Os) were also prepared by allowing [MCl(μ-Cl)(η6-p-cymene)]2 to react with 1,3-diaryltriazene in the presence of triethylamine. p-Cymene complexes MCl26-p-cymene)L reacted with equimolar amounts of 1,3-ArNNN(H)Ar triazene to give both triazenide complexes [M(η2-1,3-ArNNNAr)(η6-p-cymene)L]BPh4 and amine derivatives [MCl(ArNH2)(η6-p-cymene)L]BPh4. A reaction path for the formation of the amine complex is also reported. The complexes were characterised by spectroscopy and X-ray crystallography of RuCl26-p-cymene)[PPh(OEt)2] and [Ru(η2-1,3-p-tolyl-NNN-p-tolyl)(η6-p-cymene){CNC(CH3)3}]BPh4. Selected triazenide complexes were studied as catalysts in the hydrogenation of 2-cyclohexen-1-one and cinnamaldehyde.  相似文献   

8.
The reaction of complex [(η6-C6Me6)Ru(μ-Cl)Cl]2 (1) with sodium azide yielded complexes of the composition [(η6-C6Me6)Ru(μ-N3)(N3)]2 (2) and [(η6-C6Me6)Ru(μ-N3)(Cl)]2 (3), depending upon the reaction conditions. Complex 3 with excess of sodium azide in ethanol yielded complex 2. Complexes 2 and 3 undergo substitution reactions with monodentate ligands such as PPh3, PMe2Ph and AsPh3 to yield monomeric complexes. The structure of complex 2 was determined by X-ray crystallography. All these complexes were characterized by micro analytical data and by FT-IR and FT-NMR spectroscopy. Complex 2 crystallizes in the monoclinic space group P21/n with a = 8.5370(11) Å, b = 16.192(2) Å, c = 10.4535(13) Å and β = 110.877(2)°.  相似文献   

9.
The synthesis and crystal structures of two dinuclear titanocene hydride complexes are reported. Both complexes, namely bis(η5‐(di‐para‐tolylmethyl)cyclopentadienyl)titanium hydride dimer, [(η5‐C20H19)2Ti(μ‐H)]2 ( 2a ), and bis(η5‐2‐adamantylcyclopentadienyl)‐titanium hydride dimer, [(η5‐C15H19)2Ti(μ‐H)]2 ( 2b ), are formed via activation of molecular hydrogen by the corresponding bis(η51‐pentafulvene)titanium complexes 1a and 1b at ambient temperatures and pressures in high yields. The hydride complexes 2a and 2b exhibit planar [Ti2H2] cores and, as a result of the heterolytic cleavage of molecular hydrogen, substituted Cp Ligands were formed during the reaction.  相似文献   

10.
The meso-pyridyl substituted dipyrromethane ligands 5-(4-pyridyl)dipyrromethane (4-dpmane) and 5-(3-pyridyl)dipyrromethane (3-dpmane) have been employed in the synthesis of a series of complexes with the general formulations [(η6-arene)RuCl2(L)] (η6-arene = C6H6, C10H14) and [(η5-C5Me5)MCl2(L)] (M = Rh, Ir). The reaction products have been characterized by microanalyses and spectral studies and molecular structures of the complexes [(η6-C10H14)RuCl2(4-dpmane)] and [(η5-C5Me5)IrCl2(3-dpmane)] have been determined crystallographically. For comparative studies, geometrical optimization have been performed on the complex [(η5-C5Me5)IrCl2(4-dpmane)] using exchange correlation functional B3LYP. Optimized bond length and angles are in good agreement with the structural data of the complex [(η5-C5Me5)IrCl2(3-dpmane)]. The complexes [(η6-C10H14)RuCl2(3-dpmane)], [(η5-C5Me5)RhCl2(3-dpmane)] and [(η5-C5Me5)IrCl2(3-dpmane)] have been employed as a transfer hydrogenation catalyst in the reduction of aldehydes. It was observed that the rhodium and iridium complexes mentioned above are more effective in this regard in comparison to the ruthenium complex.  相似文献   

11.
Sterically demanding 2,6-dibenzhydryl-4-methylphenyl and 1,2,3-triazole based tertiary phosphines, [Ar*{1,2,3-N3C(Ph)C(PR2)}] (R=Ph, 3 ; R=iPr, 4 ) were obtained by the temperature-controlled lithiation of 1-(2,6-dibenzydryl-4-methyl)-5-iodo-4-phenyl-1H-1,2,3-triazole ( 2 ) followed by the reaction with R2PCl (R=Ph, iPr). Treatment of 3 with H2O2, elemental sulfur and selenium yielded chalcogenides [Ar*{1,2,3-N3C(Ph)C(P(E)Ph2)}] (E=O, 5 ; E=S, 6 ; E=Se, 7 ). The reaction of 3 with [Pd(COD)Cl2] in 1 : 1 molar ratio, afforded dimeric complex [Pd(μ2-Cl)Cl{Ar*{1,2,3-N3C(Ph)C(PPh2)}-κ1-P}]2 ( 8 ), whereas the reactions of 3 and 4 with [Pd(η3-C3H5)Cl]2 in 2 : 1 molar ratios produced complexes [Pd(η3-C3H5)Cl{Ar*{1,2,3-N3C(Ph)C(PR2)}-κ1-P}] (R=Ph, 9 ; R=iPr, 10 ). Treatment of 3 with [Pd(OAc)2] in 1 : 1 molar ratio afforded a rare trinuclear complex [{Pd3(OAc)4}{Ar*{1,2,3-N3C(C6H4)C(PPh2)}-κ2-C,P}2] ( 11 ). Treatment of 3 and 4 with [AuCl(SMe2)] resulted in [AuCl{Ar*{1,2,3-N3C(Ph)C(PR2)}-κ1-P}] (R=Ph, 12 ; R=iPr, 13 ). Bulky phosphine 4 was very effective in Suzuki-Miyaura coupling and amination reactions with very low catalyst loading. Molecular structures of 3 – 5 , and 8 – 13 were confirmed by single-crystal X-ray diffraction studies.  相似文献   

12.
Heteroleptic rhodium(I) complexes with the general formulations [(η4-C8H12)Rh(L)] [η4-C8H12 = 1,5-cyclooctadiene; L = 5-(4-cyanophenyl)dipyrromethene, cydpm; 5-(4-nitrophenyl)dipyrromethene, ndpm; and 5-(4-benzyloxyphenyl)dipyrromethene, bdpm; 5-(4-pyridyl)dipyrromethene, 4-pyrdpm; 5-(3-pyridyl)dipyrromethene, 3-pyrdpm] have been synthesized. The complex [(η4-C8H12)Rh(4-pyrdpm)] have been used as a synthon in the construction of homo-bimetallic complex [(η4-C8H12)Rh(μ-4-pyrdpm)Rh(η5-C5Me5)Cl2] and hetero-bimetallic complexes [(η4-C8H12)Rh(μ-4-pyrdpm)Ir(η5-C5Me5)Cl2], [(η4-C8H12)Rh(μ-4-pyrdpm)Ru(η6-C10H14)Cl2] and [(η4-C8H12)Rh(μ-4-pyrdpm)Ru(η6-C6H6)Cl2]. Resulting complexes have been characterized by elemental analyses and spectral studies. Molecular structures of the representative mononuclear complexes [(η4-C8H12)Rh(ndpm)] and [(η4-C8H12)Rh(4-pyrdpm)] have been authenticated crystallographically.  相似文献   

13.
The reactivity of white phosphorus and yellow arsenic towards two different nickel nacnac complexes is investigated. The nickel complexes [(L1Ni)2tol] ( 1 , L1=[{N(C6H3iPr2-2,6)C(Me)}2CH]) and [K2][(L1Ni)2(μ,η1 : 1-N2)] ( 6 ) were reacted with P4, As4 and the interpnictogen compound AsP3, respectively, yielding the homobimetallic complexes [(L1Ni)2(μ-η2121-E4)] (E=P ( 2 a ), As ( 2 b ), AsP3 ( 2 c )), [(L1Ni)2(μ,η3 : 3-E3)] (E=P ( 3 a ), As ( 3 b )) and [K@18-c-6(thf)2][L1Ni(η1 : 1-E4)] (E=P ( 7 a ), As ( 7 b )), respectively. Heating of 2 a , 2 b or 2 c also leads to the formation of 3 a or 3 b . Furthermore, the reactivity of these compounds towards reduction agents was investigated, leading to [K2][(L1Ni)2(μ,η2 : 2-P4)] ( 4 ) and [K@18-c-6(thf)3][(L1Ni)2(μ,η3 : 3-E3)] (E=P ( 5 a ), As ( 5 b )), respectively. Compound 4 shows an unusual planarization of the initial Ni2P4-prism. All products were comprehensively characterized by crystallographic and spectroscopic methods.  相似文献   

14.
Reaction of PhEEPh (E  S, Se) with (η5-RC5H4)2Zr(CH3)2 (R  H, t-Bu) affords the new complexes (η5-RC5H4)2Zr(EPh)CH3 and PhECH3. Irradiation of these products by UV light finally gives the known complexes (η5-RC5H4)2Zr(EPh)2. The latter complexes can also be obtained from an irradiated mixture of (η5-RC5H4)2ZrPh2 and PhEEPh. These reactions are thought to involve an SH2 process at the metal center.  相似文献   

15.
CO2, COS, and SCNPh react under very mild conditions with the copper(I)-tetrahydroborate complexes [(PR3)2Cu(η2-BH4)] (R = Ph, Cy); CO2 and COS give the complexes [(PR3)2Cu(η2-O2CH)] and [(PR3)2Cu(η2-OSCH)] respectively, whereas SCNPh gives the η2-dithiocarbamate complexes [(PR3)2Cu-(η2-S2CNHPh)]. Addition of PPh3 under CO2 to solutions of [(PPh3)2Cu-(η2-BH4)] gives [(PPh3)3Cu(η1-O2CH)] while addition of PPh3 and NBu4ClO4 under CO2 gives [(PPh3)3Cu(η-O2CH)Cu(PPh3)3] ClO4.  相似文献   

16.
New series of mono and binuclear arene ruthenium complexes [{(η6-arene)RuCl(L)}]+ and [{(η6-arene)RuCl}2(μ-L)2]2+ (arene=benzene, p-cymene or hexamethylbenzene), {L=pyridine-2-carbaldehyde azine (paa), p-phenylene-bis(picoline)-aldimine (pbp) and p-bi-phenylene-bis(picoline)-aldimine (bbp)} are reported. The complexes have been fully characterized and molecular structure of the representative mononuclear complex [(η6-C6Me6)RuCl(paa)]BF4 (1), binuclear complexes [{(η6-C10H14)RuCl}2(μ-paa)](BF4)2 (3) and [{(η6-C10H14)RuCl}2(μ-pbp)](BF4)2 (6) have been determined by single crystal X-ray diffraction analyses. Single crystal X-ray structure determination revealed that in the binuclear complexes the [(η6-C10H14)RuCl]+ units are trans disposed. Further, the crystal packing in the complexes 1, 3 and 6 is stabilized by C-H?X type (X=Cl, F) inter, intramolecular hydrogen bonding and π-π stacking (3). To explore the ambiguous nature of the bonding between pyridine-2-carbaldehyde azine (paa) with ruthenium containing units [(η6-arene)RuCl]+, DFT/B3LYP calculations have been performed on the complexes [(η6-arene)RuCl(paa)]+ (arene=C6H6, I; C6Me6, II; C10H14, III).  相似文献   

17.
The complex (η5-C5Me5)Co(CO)2 reacts with Cl2 and with Br2 to give [(η5-C5Me5)CoCl(μ-Cl)]2 and (η5-C5Me5)Co(CO)Br2, respectively. The latter was converted into the dimeric species [(η5-C5Me5CoBr(μ-Br)]2. The reaction of dimeric pentamethylcyclopentadienylcobalt complexes [(η5-C5Me5)CoX(μ-X)]2 (X = Cl, Br, I) with potassium hydroxide gives the mono-μ-hydrido complexes [(η5-C5Me5)CoX]2(μ-H)(μ-X).  相似文献   

18.
Half‐metallocene diene complexes of niobium and tantalum catalyzed three‐types of polymerization: (1) the living polymerization of ethylene by niobium and tantalum complexes, MCl24‐1,3‐diene)(η5‐C5R5) ( 1‐4 ; M = Nb, Ta; R = H, Me) combined with an excess of methylaluminoxane; (2) the stereoselective ring opening metathesis polymerization of norbornene by bis(benzyl) tantalum complexes, Ta(CH2Ph)24‐1,3‐butadiene)(η5‐C5R5) ( 11 : R = Me; 12 : R = H) and Ta(CH2Ph)24o‐xylylene)(η5‐C5Me5) ( 16 ); and (3) the polymerization of methyl methacrylate by butadiene‐diazabutadiene complexes of tantalum, Ta(η2‐RN=CHCH=NR)(η4‐1,3‐butadiene)(η5‐C5Me5) ( 25 : R = p‐methoxyphenyl; 26 : R = cyclohexyl) in the presence of an aluminum compound ( 24 ) as an activator of the monomer.  相似文献   

19.
tBuN = VCl2 · 1,2-Dimethoxoethane, a Precursor in the Synthesis of Binuclear Diamagnetic tert -Butylimidovanadium(IV) Compounds Syntheses of the paramagnetic tert-butylimidovanadium(IV) complexes tBuN = VCl2 · DME ( 7 ), tBuN = VCl2 · 2 L (L = 1,4-dioxane, thf, PMe3, PEt3, pyridine) and tBuN = VBr2 · DME are described; the free Lewis acids has been found by mass spectroscopy to be the binuclear compounds [(μ-NtBu)2V2Cl4] und [(μ-NtBu)2V2Br4]. 7 reacts with LiOR, LiOAr and LiNR2 forming binuclear diamagnetic tert-butylimidovanadium(IV) compounds: [(μ-NtBu)2V2Cl2(OiPr)2] ( 18 ), [(μ-NtBu)2V2(OR)4], [(μ-NtBu)2V2Cl2(OAr)2], [(μ-NtBu)2V2(OAr)4] and [(μ-NtBu)2V2Cl2(NR2)2]. In additional experiments the complexes [(μ-NtBu)2V2(CH2CMe3)2(OAr)2], [(μ-NtBu)2V2Me2(NR2)2], [(μ-NtBu)2V2Cl4] and tBuN = V(OAr)3 has been prepared. All compounds obtained are characterized by spectroscopic methods (MS; 1H, 13C, 51V NMR), [(μ-NtBu)2V2Cl2(NtBuSiMe3)2] ( 21 ) by single crystal x-ray diffraction. For 18 the presence of cis/trans isomeres was shown by NMR spectroscopy. The 51V NMR spectra of the binuclear diamagnetic vanadium (IV) compounds are discussed.  相似文献   

20.
Reactions of the chloro-bridged arene ruthenium complexes [{(η6-arene)RuCl(μ-Cl}2] (η6-arene = benzene, p-cymene) and structurally analogous rhodium complex [{(η5-C5Me5)RhCl(μ-Cl}2] with imidazole based ligands viz., 1-(4-nitro-phenyl)-imidazole (NOPI), 1-(4-formylphenyl)-imidazole (FPI) and 1-(4-hydroxyphenyl)-imidazole (HPI) have been investigated. The resulting complexes have been characterised by elemental analyses, IR, 1H and 13C NMR, electronic absorption and emission spectral studies. Crystal structure of the representative complex [(η5-C5Me5)RhCl2(NOPI)] has been determined crystallographically. Geometrical optimisation on the complexes have been performed using exchange correlation functional B3LYP. Optimised bond lengths and angles of the complexes have been found to be in good agreement with our earlier reports and single crystal X-ray data of the complex [(η5-C5Me5)RhCl2(NOPI)].  相似文献   

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