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1.
Reactions of reactive cyclopentadienyliron complexes C5H5Fe(CO)2I, [C5H5Fe(CO)2THF]BF4, [C5H5Fe(CO)((CH3)2S)2]BF4 and [C5H5Fe(p-(CH3)2C6H4)]PF6 with P(OR)3 as ligands (R = CH3, C2H5, i-C3H7 and C6H5) lead to the formation of the complex compounds C5H5Fe(CO)2?n(P(OR)3)nI and [C5H5Fe(CO)3?n(P(OR)3)n]X (n = 1, 2 and n = 1–3, X = BF4, PF6). Spectroscopic investigations (IR, 1H, 13C and 31P NMR) indicate an increase of electron density on the central metal with increasing substitution of CO groups by P(OR)3 ligands. The stability of the compounds increase in the same way.  相似文献   

2.
5 -C5H4[CH(CH3)OC(O)CH = CH2])Mn(CO)3, {η5—C5[CH-(CH3)OC(O)C(CH3)=CH2]]Mn(CO)3, and {η5—C5H4[CH(CH3)-OC(O)CH=C(CH3)2])Mn(CO)3 were synthesized (63, 57, and 51%, respectively) from {η5—C5H4[CH(CH3)OH])Mn(CO)3, toluene-sulfonic acid, and the acrylic, methacrylic, and dimethylacrylic acids, and from (η5-C5H4[CH(CH3)OH]}Mn(CO)3, pyridine, and the acrylic, methacrylic, and dimethylacrylic acyl chlorides [26, 48, and 25% (impure), respectively]. No product was obtained when NaH was used as the base in the latter method. The acrylate and methacrylate monomers were bulk homopolymerized at 65°C with AIBN (75% yield, Mn = 88,550 g/mol; 78% yield, Mn = 349,350 g/mol, respectively). The dimethylacrylate did not polymerize under these conditions. The polymers lost vinylcymantrene upon heating to 257 and 279°C, respectively. The polymers did not exhibit a clear Tg but were observed to soften at 85 and 160°C, respectively, and they could be pulled into fibers.  相似文献   

3.
Reactions of CH3Li, C6H5Li, and C6H5CH2MgCl with [(C5H5)Fe(CO)2Y]+-[B(C6H5)4] [Y  Co, P(C6H5)3, and CS] have been investigated. The organolithium reagents used act either as reducing agents or as nucleophilic reagents towards the cyclopentadienyliron tricarbonyl cation and its thiocarbonyl analogue. Benzyl-magnesium chloride reacts with the cyclopentadienyl ring of [(C5H5)Fe(CO)3]+ and [(C5H5)Fe(CO)2P(C6H5)3]+ producing neutral cyclopentadiene complexes.  相似文献   

4.
The relative reactivities of CO and CNR ligands with CH3NH2 were investigated in complexes which contained both ligands. Like (C5H5Fe(CO)3+; the (C5H5)Fe(CO)2(CNCH3)+ complex reacts with CH3NH2 to give the carbamoyl complex (C5)Fe(CO)(CNCH3)(CONHCH3); this is a readily reversible reaction. In contrast, (C5H5)Fe(CO)(CNCH3)2+ reacts with CH3NH2 to give the amidinium or carbene complex, (C5H5)Fe(CO)(CNCH3)[C(NHCH3)2]+]. In a slow reaction, (C5H5)Fe(PPh3)(CO)(CNCH3)+ forms the amidinium complex, (C5H5)Fe(PPh3)(CO)[C(NHCH3)2]+. Factors that affect the site of CH3NH2 reaction are discussed. The complexes have been characterized by IR and NMR spectroscopy; a variable temperature NMR study of (C5H5)Fe(CO)(CNCH3)[C(NHCH3)2]+ indicates restricted rotation around the CN bonds of the amidinium ligand.  相似文献   

5.
Bis(cyclopentadienyl)methane-bridged Dinuclear Complexes, V[1]. – Heteronuclear Co/Rh-, Co/Ir-, Rh/Ir-, and Ti/Ir Complexes with the Bis(cyclopentadienyl)methane Dianion as Bridging Ligand* The lithium and sodium salts of the [C5H5CH2C5H4]- anion, 1 and 2 , react with [Co(CO)4I], [Rh(CO)2Cl]2, and [Ir(CO)3Cl]n to give predominantly the mononuclear complexes [(C5H5-CH2C5H4)M(CO)2] ( 3, 5, 7 ) together with small amounts of the dinuclear compounds [CH2(C5H4)2][M(CO)2]2 ( 4, 6, 8 ). The 1H- and 13C-NMR spectra of 3, 5 , and 7 prove that the CH2C5H5 substituent is linked to the π-bonded ring in two isomeric forms. Metalation of 5 and 7 with nBuLi affords the lithiated derivatives 9 and 10 from which on reaction with [Co(CO)4I], [Rh(CO)2Cl]2, and [C5H5TiCl3] the heteronuclear complexes [CH2(C5H4)2][M(CO)2][M′(CO)2] ( 11–13 ) and [CH2(C5H4)2]-[Ir(CO)2][C5H5TiCl2] ( 17 ) are obtained. Photolysis of 11 and 12 leads almost quantitatively to the formation of the CO-bridged compounds [CH2(C5H4)2][M(CO)(μ-CO)M′(CO)] ( 14, 15 ). According to an X-ray crystal structure analysis the Co/Rh complex 14 is isostructural to [CH2(C5H4)2][Rh2(CO)2(μ-CO)] ( 16 ).  相似文献   

6.
The mass spectra of the following acetylenic derivatives of iron, ruthenium and osmium carbonyls are reported: the iron compounds Fe2(CO)6[C2(C6H5)s2]2, Fe2(CO)6[C2(CH3)2]2 and Fe2(CO)6[C2(C2H5)2]2, the ruthenium compounds Ru2(CO)6[C2(C6H5)2]2, and Ru2(CO)6[C2(CH3)2]2 and the osmium compounds Os2(CO)6[C2(C6H5)2]2, Os2(CO)6[C2HC6H5]2 and Os2(CO)6[C2(CH3)2]2. Iron compounds exhibit breakdown schemes where binuclear, mononuclear and hydrocarbon ions are present. On the other hand, ruthenium and osmium compounds fragment in a similar way and give rise to singly and doubly charged binuclear ions. Phenylic derivatives of ruthenium and osmium also give weak triply charged ions. The results are discussed in terms of relative strengths of the metal-metal and metal-carbon bonds.  相似文献   

7.
The positive-ion mass spectra of the following organonitrogen derivatives of metal carbonyls are discussed: (i) The compounds NC5H4CH2Fe(CO)2C5H5, NC5H4CH2COMo(CO)2C5H5, NC5H4CH2W(CO)3C5H5, NC5H4CH2COMn(CO)4, C5H10NCH2CH2Fe(CO)2C5H5, (CH3)2NCH2CH2COFeCOC5H5 and (CH3)2NCH2CH2COMn(CO)4 obtained from metal carbonyl anions and haloalkylamines, (ii) The isocyanate derivative C5H5Mo(CO)3CH2NCO; (iii) The arylazomolybdenum derivatives RN2Mo(CO)2C5H5 (R ? phenyl, p-tolyl, or p-anisyl); (iv) The compound (C6H5N)2COFe2(CO)6 obtained from Fe3(CO)12 and phenyl isocyanate; (v) The N,N,N′,N′-tetramethylethylenediamine complex (CH3)2NCH2CH2N(CH3)2W(CO)4. Further examples of eliminations of hydrogen, CO, and C2H2 fragments were noted. In addition evidence for the following more unusual processes was obtained: (i) Elimination of HCN fragments from the ions [NC5H4CH2MC5H5]+ to give the ions [(C5H5)2M]+ (M ? Fe, Mo and W); (ii) Conversion of C5H5Mo(CO)3CH2NCO to C5H5Mo(CO)2CH2NCO within the mass spectrometer; (iii) Elimination of N2 from [RN2MoC5H5]+ to give [RMoC5H5]+; (iv) Novel eliminations of HNCO, FeNCO, and C6H5NC fragments in the mass spectrum of (C6H5N)2COFe2(CO)6; (v) Facile dehydrogenation of the N,N,N′,-N′-tetramethylethylenediamine ligand in the complex (CH3)2NCH2CH2N(CH3)2W(CO)4.  相似文献   

8.
The reactions of Fe(CO)5, Fe(CO)4P(C6H5)3, M(CO)6 (M  W, Mo, Cr), and (CH3C5H4Mn(CO)3 with KH and several boron and aluminium hydrides were investigated. Iron pentacarbonyl was converted quantitatively to K+Fe(CO)4-(CHO) by hydride transfer from KBH(OCH3)3 allowing isolation of [P(C6H5)3]2-Nn+Fe(CO)4(CHO)? in 50% yield. Lower yields were obtained with LiBH(C2H5)3, and other hydride sources gave little or no formyl product. The stability of Fe(CO)4(CHO)? in THP was found to depend on the cation, decreasing in the order [P(C6H5)3]2N+ > K+ > Na+ > Li+. No formyl complexes were isolated and no spectroscopic evidence for formyl formation was observed in the reactions of the other transition metal carbonyls with several hydride sources. Fe(CO)4-P(C6H5)3 gave K2Fe(CO)4 when treated with KHB(OCH3)3. When treated with LiBH(C2H5)3, W(CO)6 gave a mixture of HW2(CO)10?and (OC)5W(COC2H5)?; the latter was methylated to give the carbene complex (OC)5WC(OCH3)C2H5.  相似文献   

9.
Metal Complexes of Biologically Important Ligands. CXVII [1] Addition of the O'Donnell Reagent [Ph2C=NCHCO2Me] to Coordinated, Unsaturated Hydrocarbons of [(C6H7)Fe(CO)3]+, [C7H9Fe(CO)3]+, [(C7H7)M(CO)3]+ (M = Cr, Mo), and [(C2H4)Re(CO)5]+. α-Amino Acids with Organometallic Side Chains The addition of [Ph2C=NCHCO2Me] to [(C6H7)Fe(CO)3]+, [(C7H9)Fe(CO)3]+, [(C7H7)M(CO)3]+ (M = Cr, Mo) and [(C2H4)Re(CO)5]+ gives derivatives of α-amino acids with organometallic side chains. The structure of [(η4-C6H7)CH(N=CPh2)CO2Me]Fe(CO)3 was determined by X-ray diffraction. From the adduct of [Ph2C=NCHCO2Me] and [(C7H7)Mo(CO)3]+ the Schiff base of a new unnatural α-amino acid, Ph2C=NCH(C7H7)CO2Me, was obtained.  相似文献   

10.
The new complexes Ru(CO)35-(C2H3)2BCl] and [C5(CH3)5]Rh[η5-(C2H3)2BX] with XOCH3, CH3 and C6H5 are described.  相似文献   

11.
The reactions of Fe(CO)5 or Fe3(CO)12 with NaBEt3H or KB[CH(CH3)C2H5]3H, respectively and treatment of the resulting carbonylates M2Fe(CO)4, M = Na, K with elemental selenium in appropriate ratios lead to the formation of M2[Fe2(CO)6(μ‐Se)2]. Subsequent reactions with organo halides or the complex fragment cpFe(CO)2+, cp = η5‐C5H5 afforded the selenolato complexes [Fe2(CO)6(μ‐SeR)2], R = CH2SiMe3 ( 1 ), CH2Ph ( 2 ), p‐CH2C6H4NO2 ( 3 ), o‐CH2C6H4CH2 ( 4 ) and cpFe(CO)2+ ( 5 ) in moderate to good yields. A similar reaction employing Ru3(CO)12, Se and p‐O2NC6H4CH2Br leads to the formation of the corresponding organic diselenide. The X‐ray structures of 1 , 3 , 4 and 5 were determined and revealed butterfly structures of the Fe2Se2 cores. The substituents in 1 , 3  and 5 adopt different conformations depending on their steric demand. In 4 , the conformation is fixed because of the chelate effect of the ligand. The Fe–Se bond lengths lie in the range 235 to 240 pm, with corresponding Fe–Fe bond lengths of 254 to 256 pm. The 77Se NMR data of the new complexes are discussed and compared with the corresponding data of related complexes.  相似文献   

12.
The mass spectra of the following compounds have been investigated: (i) The organotin derivatives (CH3)3SnMo(CO)3C5H5 and (CH3)3SnNCW(CO)5; (ii) The mercury derivatives Hg[Mn(CO)5]2, Hg[Co(CO)4]2, Hg[Mo(CO)3C5H5]2 and ClHgMo(CO)3C5H5; (iii) The polynuclear cyclopentadienyl metal derivatives [C5H5Ru(CO)2]2, [C5H5Cr(CO)3]2, [C5H5Cr(NO)2]2 and [C5H5Fe-CO]4; (iv) The trinuclear cobalt carbonyl derivatives YCCo3(CO)9 (Y = Cl and CH3); (v) The binuclear triene-iron carbonyl derivatives C4H4Fe2(CO)6 and C8H10Fe2(CO)6. The mass spectra of the trimethyltin derivatives exhibited stepwise loss of methyl groups as well as of carbonyl groups. The mass spectra of the mercury derivatives exhibited the facile loss of mercury. The mass spectrum of [C5H5Cr(CO)3]2 indicated a very weak chromium-chromium bond since it exhibited no ion containing two chromium atoms. The mass spectrum of the nitrosyl derivative [C5H5Cr(NO)2]2 exhibited the stepwise loss of its four nitrosyl groups. The mass spectrum of [C5H5FeCO]4 was rather complex and exhibited a variety of unusual processes including eliminations of neutral Fe and C5H5Fe fragments. Unusual ions observed in the mass spectrum of CH3CCo3(CO)9 include the bare polymetallic ions [Con]+ (n = 3 and 2). Many examples of the elimination of neutral CO, C2H2 and H2 fragments were noted in this work.  相似文献   

13.
The results of thermal decomposition studies of derivatives of iron containing multiple alkylmetal groups (CH3)2Si[η5-C5H4Fe(CO)2C5H11]2 (I), {(CH3)2Si[η5-C5H4Fe(CO)2]2(CH2)5}2 (II) and [η5-C5H5Fe(CO)2]2 (CH2)5 (III) are presented and compared with the results obtained for η5-C5H5Fe(CO)2C5H11 (IV). Compounds II and III are found to produce principally 1-pentene and therefore do not decompose principally by a β-hydrogen elimination steps. Compound I decomposes principally by a β-hydrogen elimination process but produces significantly more pentane in its reactions than does IV.  相似文献   

14.
The chiral cations, [CpFe(CO)(EMe2)L]+, are obtained both by reaction of [CpFe(CO)(EMe2)2]+ with the ligands (L) by heating, and by irradiation of the cations [C5H5Fe(CO)2EMe2]+ in the presence of L (E = S, Se, Te; L = PR3, AsR3, SbR3). The inversion about the chalcogen atom is investigated by DNMR spectrocopy. Compounds of the type [C5H5Fe(TeMe2)L2]+] are formed by irradiation of [C5H5Fe(CO)2(TeMe2)]+ and the ligands (L2 = 2 PR3, R = CH3, OCH3, OC6H5; L2 = R2P(CH2)nPR2, R = C6H5, n = 1,2,3). 77Se and 125Te NMR data vary according to the donor properties of the ligand L in the complexes.  相似文献   

15.
The preparation of (borinato)(cyclobutadiene)cobalt complexes from the reactions of Co(C5H5BR)(1,5-C8H12) with acetylenes C2R′2 and of [C4(CH3)4]Co(CO)2I with Tl(C5H5BR) (R,R′ = CH3, C6H5) is described.In electrophilic substitution reactions Co(C5H5BCH3)[C4(CH3)4] (IVa) is more reactive than ferrocene. CF3CO2D effects H/D-exchange in the α-position of the borabenzene ring within a few minutes at ambient temperature and in the γ-position within less than four hours Friedel-Crafts acetylation with CH3COCl/AsCl3 in CH2Cl2 affords the 2-acetyl and the 2,6-diacetyl derivative of IVa. With the more active catalyst AlCl3, ring-member substitution is effected to give cations [Co(arene)C4(CH3)4]+ (arene = C6H5CH3, 2-CH3C6H4COCH3). Vilsmeier formylation gives the 2-formyl derivative of IVa. The acyl derivatives Co(2-R1CO-6-R2C5H3BCH3)[C4(CH3)4] (R1 = CH3, R2 = H, CH3CO and R1 = R2 = H) transform to the corresponding cations [Co(ortho-R1R2C6H4)C4(CH3)4]+ in superacidic media. The mechanistic relationship between acylation and ring-member substitution is discussed in detail.  相似文献   

16.
Various di- and poly-nuclear transition metal complexes have been investigated as catalysts for the metal carbonyl substitution reaction. The complexes [{(η5-C5H4R)Fe(CO)2} 2] (R = H, Me, CO2Me, OMe, O(CH2)4OH) and [{(η5-C5H5)-Ru(CO)2} 2] are active catalysts for a range of substitution reactions including the probe reaction [Fe(CO)4(CNBut)] + ButNC → [Fe(CO)3(CNBut)2] + CO. [{(η5-C5Me5)Fe(CO)2}2] is catalytically active only on irradiation with visible light. For [{η5-C5H5)Fe(CO)2}2] and a range ofisocyanides RNC ( R = But, C6H5CH2, 2,6-Me2C6H3), catalyst modification by substitution with isocyanide is a major factor influencing the degree of the catalytic effects observed, e.g. [{(η5-C5H5)Fe(CO)(CNBut)}2] is approximately 35 times as active as [(η5-C5H5)2FE2(CO)3(CNBut)] for the [Fe(CO)4(CNBut)] → [Fe(CO)3(CNBut)2] conversion. Mechanistic studies on this system suggest that the catalytic substitution step probably involves a rapid intermolecular attack of isonitrile, possibly on a labile catalyst-substrate radical intermediate such as {[Fe(CO)4(CNR)][(η5-C5H5)Fe(CO)2]}; or on a reactive radical cation such as [Fe(CO)4(CNR)]+ generated via electron transfer between the substrate and the catalyst. Other transition metal complexes which also catalyze the substitution of CO by isocyanide in [Fe(CO)4(CNR)] (and [M(CO)6] (M = Cr, Mo, W), [Mn2(CO)10], [Re2(CO)10]) include [Ru3(CO)12], [H4Ru4(CO)12], [M4(CO)12] (M = Co, Ir) and [Co2(CO)8]. These reactions conform to the general mechanistic patterns established for [{(η5-C5H5)Fe(CO)2}2], suggesting a similar mechanism. A range of materials, notably PtO2, PdO and Pd/C, act as promoters for the homogeneous di- and poly-nuclear transition metal catalysts, and can even be used to induce activity in normally inactive dimer and cluster complexes e.g. [Os3(CO)12]. This promotion is attributed to at least three possible effects: the removal of catalyst inhibitors, a catalyzed substitution of the homogeneous catalyst partner, and a possible homogeneous-heterogeneous interaction which promotes the formation of catalytic intermediates.  相似文献   

17.
Complex Chemistry of Polyfunctional Ligands. XLVI. trans-Bis(methyldiphenylphosphine) Tetracarbonyl Chromium The complex trans-Cr(CO)4[CH3P(C6H5)2]2 was produced photochemically from Cr(CO)6 and CH3P(C6H5)2 in THF. Composition and geometric structure has been deduced from elemental analysis, mass, 13C-NMR, IR, FIR and Raman spectra.  相似文献   

18.
Tricarbonyl(fulvene)chromium complexes react with anionic nucleophiles to give functionally substituted cyclopentadienyl derivatives. The nucleophilic attack occurs at the exocyclic carbon atom of the fulvene ligand. Addition of PPh2 to (η6-6,6-dimethylfulvene)Cr(CO)3 (1) yields the novel anion [(η5-C5H4C(CH3)2PPh2)Cr-(CO)3], which can be isolated as a K+, (C2H5)4N+, (C6H5)4P+, or Tl+ derivative (2–5). The potassium salt of the uncoordinated C5H4C(CH3)2PPh2 anion (7) is obtained by treatment of 6,6-dimethylfulvene with KPPh2·2C4H8O2. Similarly, NaC5H5 reacts with 1 to give Na[(η5-C5H4C(CH3)2C5H5)Cr(CO)3] (8). The reactions of (6-dimethylaminofulvene)Cr(CO)3 (15) with nucleophiles are accompanied by elimination of dimethylamine. Addition of Ph3P=CH2 to 15 gives an unstable product, but after reaction of 6-dimethylaminofulvene with Ph3P=CH2, the free ligand C5H4=CHCH=PPh3 (17) can be isolated in moderate yields. Deeply colored anions of the type [(η55-C5H4C(R)=C5H4)Cr2(CO)6] (R = H, N(CH3)2) are synthesized by reaction of 15 or (6-dimethylamino-6-methylthiofulvene)Cr(CO)3 with NaC5H5 and subsequent complexation of the mononuclear intermediate with (CH3CN)3Cr(CO)3. In addition, the synthesis of the new fulvene complexes [C5H4=CH(CH=CH)2N(CH3)Ph]M(CO)3 (23, 24; M = Cr, Mo) is described. The investigation is extended to α-ferrocenylcarbenium ions, which are isoelectronic with (fulvene)Cr(CO)3 complexes. [(η5-C5H5)Fe(C5H4CPh2)]+ BF4 (25) adds tertiary phosphines at the exocyclic carbon atom to give phosphonium salts of the type [(η5-C5H5)Fe(C5H4CPh2PR3)]+BF4. A CO-substititution product of a tricarbonyl (fulvene)chromium complex is obtained for the first time by irradiation of (η6-6,6-diphenylfulvene)Cr(CO)3 in the presence of PPh3. In addition, an improved synthesis of the (CH3CN)3M(CO)3 complexes (M = Cr, Mo, W) is reported.  相似文献   

19.
Monocationic bis‐allyl complexes [Ln(η3‐C3H5)2(thf)3]+[B(C6X5)4]? (Ln=Y, La, Nd; X=H, F) and dicationic mono‐allyl complexes of yttrium and the early lanthanides [Ln(η3‐C3H5)(thf)6]2+[BPh4]2? (Ln=La, Nd) were prepared by protonolysis of the tris‐allyl complexes [Ln(η3‐C3H5)3(diox)] (Ln=Y, La, Ce, Pr, Nd, Sm; diox=1,4‐dioxane) isolated as a 1,4‐dioxane‐bridged dimer (Ln=Ce) or THF adducts [Ln(η3‐C3H5)3(thf)2] (Ln=Ce, Pr). Allyl abstraction from the neutral tris‐allyl complex by a Lewis acid, ER3 (Al(CH2SiMe3)3, BPh3) gave the ion pair [Ln(η3‐C3H5)2(thf)3]+[ER31‐CH2CH?CH2)]? (Ln=Y, La; ER3=Al(CH2SiMe3)3, BPh3). Benzophenone inserts into the La? Callyl bond of [La(η3‐C3H5)2(thf)3]+[BPh4]? to form the alkoxy complex [La{OCPh2(CH2CH?CH2)}2(thf)3]+[BPh4]?. The monocationic half‐sandwich complexes [Ln(η5‐C5Me4SiMe3)(η3‐C3H5)(thf)2]+[B(C6X5)4]? (Ln=Y, La; X=H, F) were synthesized from the neutral precursors [Ln(η5‐C5Me4SiMe3)(η3‐C3H5)2(thf)] by protonolysis. For 1,3‐butadiene polymerization catalysis, the yttrium‐based systems were more active than the corresponding lanthanum or neodymium homologues, giving polybutadiene with approximately 90 % 1,4‐cis stereoselectivity.  相似文献   

20.
Molybdenum(II) Halide Clusters with six Alcoholate Ligands: (C18H36N2O6Na)2[Mo6Cl8(OCH3)6] · 6CH3OH and (C18H36N2O6Na)2[Mo6Cl8(OC6H5)6] . The reaction of Na2[Mo6Cl8(OCH3)6] and 2,2,2-crypt yields (C18H36N2O6Na)2[Mo6Cl8(OCH3)6] · 6 CH3OH ( 1 ), which is converted to (C18H36N2O6Na)2[Mo6Cl8(OC6H5)6] ( 2 ) by metathesis with phenol. According to single crystal structure determinations ( 1 : P3 1c, a=14.613(3) Å, c=21.036(8) Å; 2 : P3 1c, a=15.624(1) Å, c=19.671(2) Å) the compounds contain anionic clusters [Mo6Cl8i(ORa)6]2? ( 1 : d(Mo—Mo) 2.608(1) Å to 2.611(1) Å, d(Mo—Cl) 2.489(1) Å to 2.503(1) Å, d(Mo—O) 2.046(4) Å; 2 : d(Mo—Mo) 2.602(3) Å to 2.608(3) Å, d(Mo—Cl) 2.471(5) Å to 2.4992(5) Å, d(Mo—O) 2.091(14) Å). Electronic interactions of the halide cluster and the phenolate ligands in [Mo6Cl8(OC6H5)6]2? is investigated by means of UV/VIS spectroscopy and EHMO calculations.  相似文献   

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