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1.
Syntheses and Crystal Structures of Copper and Silver Complexes containing Dithiophosphinato and Trithiophosphonato Ligands The reactions of CuI and AgI salts with diphenyldithiophosphinic acid trimethylsilylester in the presence of tertiary phosphines yield the complexes [Cu(μ‐S)SPPh2(PR3)]2 (R = Me 1a , iPr 1b ), [Ag(μ‐S)SPPh2(PnPr3)]2 ( 2 ), [Ag(S2PPh2)(PEt3)]2 ( 3 ), and [Cu8(μ8‐S)(S2PPh2)6] ( 4 ). The cage complex [(PhPS3)2Cu4(PMe3)5] ( 5 ) is obtained by the reaction of phenyltrithiophosphonic acid trimethylester. All compounds were structurally characterised by X‐ray crystallography.  相似文献   

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Ligand Stabilized Cyclic and Polycyclic Aluminium Phosphorus and Aluminium Arsenic Compounds The reaction of AlCl3 with Li2AsSiRMe2 (R = CMe2iPr) in a mixture of ether and heptane yields the ether stabilized polycyclic compound [(AlCl)4(AsSiRMe2)4(Et2O)2] ( 4 ) with a ladder shaped Al4As4 core structure. The shape of 4 is mostly similar to the aluminium phosphorus compound [(AlCl)4(PSiiPr3)4(Et2O)2] ( 1 ) described recently [1]. These two compounds 1 and 4 can be cleaved into the cyclic compounds [{AlCl(C5H5N)}2(PSiiPr3)2] ( 3 ) and [{AlCl(NEt3)}2(AsSiRMe2)2] ( 5 ) by reaction with pyridine and NEt3, respectively. The compounds 3 , 4 , and 5 have been characterized by single crystal X‐ray diffraction.  相似文献   

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Synthesis and Characterization of New Cyclic and Cage‐like Indium — Phosphorus and Indium — Arsenic Compounds The reaction of InEt3 with H2ESiiPr3 initially yields the cyclic compound [Et2InP(H)SiiPr3]2 ( 2 ). 2 appears as a mixture of cis and trans isomers and has been characterized by 31P‐NMR spectroscopy, IR spectroscopy, and mass spectrometry. 2 decomposes in solution under elimination of ethane during a few days to form [EtInPSiiPr3]4 ( 3 ) with a cage‐like structure. The analogous arsenic compound [EtInAsSiiPr3]4 ( 4 ) can be prepared by reaction of InEt3 with H2AsSiiPr3. Central structural motif of 3 and 4 is an In4E4 heterocubane like structure (E = P, As), whereas the reaction of InEt3 with H2PSiMe2Thex (Thex = CMe2iPr) yields [EtInPSiMe2Thex]6 ( 5 ) with a hexagonal prismatic structure.  相似文献   

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Lithium and Cesium Alkoxometalates The aluminium alkoxide, Al(OCH2Ph)3 ( 1 ), can be obtained from a direct synthesis of Al and PhCH2OH under HgCl2 catalysis. The formation of the metalate [{(Diglyme)Li}{Al(OtBu)4}] ( 2 ) from LiAlH4 and tBuOH in THF under evolution of hydrogen takes place, if the reaction product is heated under reflux with additional tBuOH in diglyme. The nucleophilic attack of F ions leads during the treatment of CsF on a THF solution of Al(OcHex)3 after ligand redistribution to the coordination polymer [{Cs(THF)2}{Cs(THF)}{Al(OcHex)4}2]n ([3]n). 1 , 2 , and 3 were characterized by NMR, IR and MS techniques as well as by crystal structure analyses. According to them 1 is present as tetramer in solution and the solid state. The central structural motif of the metalate 2 is a heteronuclear and planar LiO2Al four‐membered ring with a penta‐coordinated Li+ ion. In the chainlike coordination polymer [ 3 ]n Cs+ ions with coordination number five and six occupy alternating positions.  相似文献   

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《Chemie in Unserer Zeit》2017,51(4):264-271
The present state of the routine 2D COSY‐ and HSQC‐NMR spectroscopy is reported. After a short introduction into the basic theory of 2D NMR the pulse sequences of COSY and HSQC are explained. Using an example from natural product chemistry the procedures during the analysis of these 2D NMR spectra are demonstrated.  相似文献   

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《Chemie in Unserer Zeit》2017,51(6):392-400
In this article we first discuss the NMR pulse sequence HMBC (heteronuclear multiple bond correlation) and demonstrate its importance for the final structure verification of the natural product cytisine. The 1H‐, 13C‐, COSY‐ und HSQC‐spectra of this compound have been shown in the first two articles of this series. After this we explain the physics of the NOESY‐experiment (nuclear Overhauser effect spectroscopy) and apply this for the stereochemical assignment of the proton signals. A correlation diagram between NOE integrals and hydrogen atom distances proofs the correct analysis.  相似文献   

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Mercury(II) Chloride and Iodide Complexes of Dithia‐ and Tetrathiacrown Ethers The complexes [(HgCl2)2((ch)230S4O6)] ( 1 ), [HgCl2(mn21S2O5)] ( 2 ), [HgCl2(ch18S2O4)] ( 3 ) and [HgI(meb12S2O2)]2[Hg2I6] ( 4 ) have been synthesized, characterized and their crystal structures were determined. In [(HgCl2)2((ch)230S4O6)] two HgCl2 units are discretely bonded within the ligand cavity of the 30‐membered dichinoxaline‐tetrathia‐30‐crown‐10 ((ch)230S4O6) forming a binuclear complex. HgCl2 forms 1 : 1 “in‐cavity” complexes with the 21‐membered maleonitrile‐dithia‐21‐crown‐7 (mn21S2O5) ligand and the 18‐membered chinoxaline‐dithia‐18‐crown‐6 (ch18S2O4) ligand, respectively. The 12‐membered 4‐methyl‐benzo‐dithia‐12‐crown‐4 (meb12S2O2) ligand gave with two equivalents HgI2 the compound [HgI(meb12S2O2)]2[Hg2I6]. In the cation [HgI(meb12S2O2)]+ meb12S2O2 forms with the cation HgI+ a half‐sandwich complex.  相似文献   

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Mononitrosyl and trans ‐Dinitrosyl Complexes of Phthalocyaninates of Manganese and Rhenium Tetra(n‐butyl)ammonium or di(triphenylphosphane)iminium nitrosylacidophthalocyaninato(2–)manganate, (cat)[Mn(NO)(X)pc2–] (X = ONO, NCO, N3; cat = nBu4N, PNP) is prepared from acidophthalocyaninato(2–)manganese, [Mn(X)pc2–], (cat)NO2 and (nBu4N)BH4 in CH2Cl2 or from nitrosylphthalocyaninato(2–)manganese, [Mn(NO)pc2–] and (nBu4N)X (X = ONO, NCO, N3, NCS) at T < 120 °C, respectively. [Mn(NO)(X)pc2–] dissociates in methanol, and [Mn(NO)pc2–] precipitates. Nitrito(O)phthalocyaninato(2–)manganese, (cat)NO2 and hydrogensulfide yield trans‐di(nitrosyl)phthalocyaninato(2–)manganate, trans[Mn(NO)2pc2–], isolated as red violet (PNP) and (nBu4N) complex salt. Nitrosyl(triphenylphosphane oxide)phthalocyaninato(2–)manganese, [Mn(NO)(OPPh3)pc2–] is obtained by addition of OPPh3 to [Mn(NO)pc2–] at 200 °C. Di(triphenylphosphane)phthalocyaninato(2–)rhenium(II) and (PNP)NO2 in CH2Cl2 or in molten (PNP)NO2 and PPh3 at 100 °C yields green blue l‐di(triphenylphosphane)iminium nitrosylnitrito(O)phthalocyaninato(2–)rhenate, l(PNP)[Re(NO)(ONO)pc2–]. Similarly, but with (nBu4N)NO2 red plates of tetra‐(n‐butyl)ammonium trans‐di(nitrosyl)phthalocyaninato(2–)rhenate, (nBu4N)trans[Re(NO)2pc2–] is isolated. Addition of (PNP)Br or (PNP)PF6 to a concentrated solution of (nBu4N)trans[Re(NO)2pc2–] in pyridine precipitates l(PNP)trans[Re(NO)2pc2–]. (nBu4N)trans[Re(NO)2pc2–] and PPh3 at 300 °C yield blue green nitrosyl(triphenylphosphane oxide)phthalocyaninato(2–)‐ rhenium, [Re(NO)(OPPh3)pc2–], that is oxidised with iodine precipitating nitrosyl(triphenylphosphane oxide)phthalocyaninato(2–)rhenium triiodide, [Re(NO)(OPPh3)pc2–]I3. The crystal structures of l(PNP)[Mn(NO)(ONO)pc2–] ( 1 ), l(PNP)‐ [Mn(NO)(NCO)pc2–] ( 2 ), l(PNP)trans[Mn(NO)2pc2–] ( 3 ), l(PNP)trans[Re(NO)2pc2–] ( 4 ) [Mn(NO)(OPPh3)pc2–] ( 5 ), [Re(NO)(OPPh3)pc2–] ( 6 ), and [Re(NO)(OPPh3)pc2–]I3 · CH2Cl2 ( 7 ) have been determined. The M–N(NO) distance varies between 1.623(12) Å in 5 and 1.846(3) Å in 3 . The M–N–O moiety is almost linear. The UV‐Vis spectra with the B band at ca. 14500 cm–1and the Q band at 30400 cm–1 do not dependent significantly on the axial ligand and the metal atom and its oxidation state. N–O stretching vibrations are observed in the IR spectra between 1701 cm–1 in 3 and 1753 cm–1 in [Mn(NO)pc2–] or for the Re series between 1571 cm–1 in 4 and 1724 cm–1 in 7 . M–N(NO) stretching and M–N–O deformation vibrations are assigned in the IR spectra and resonance Raman spectra between 486 cm–1 in 4 and 620 cm–1 in 1 .  相似文献   

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