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Eine neue Verbindungsklasse bilden die aus 1 oder Iodosobenzol synthetisierten Titelverbindungen, z.B. 2. Das Oxidationspotential von 1 wird durch die Bis(onio)‐Substitution immens gesteigert, so daß sich die neuen Systeme als potente Oxidantien verwenden lassen. Beispiele sind die Dehydrierungen von Monohydrazonen zu Diazoverbindungen und von 1.2‐Bishydrazonen zu Alkinen.
Eine neue Verbindungsklasse bilden die aus 1 oder Iodosobenzol synthetisierten Titelverbindungen, z.B. 2. Das Oxidationspotential von 1 wird durch die Bis(onio)‐Substitution immens gesteigert, so daß sich die neuen Systeme als potente Oxidantien verwenden lassen. Beispiele sind die Dehydrierungen von Monohydrazonen zu Diazoverbindungen und von 1.2‐Bishydrazonen zu Alkinen.
The new approach for the preparation of P,P-disubstituted pyrroles presented here opens up a rational, and multifacetted direct route to porphyrins with a three-dimensionally structured periphery. This has led to the preparation of the first biconcave metalloporphyrins, whose frameworks promise interesting catalyst properties.E-xperinien f a1 Procedure 1: Acetylcnedicarbonitrile (234 mg, 3.08 mmol) in benzene ( 5 mL) was added dropwise over 4 h (under N2) to a heated (XO'C) suspension of 2,3,6,7-tetramethylanthracene (452 mg. 1.93 mmol) [IS] in benzene ( 5 mL). The reaction mixture was heated under retlux for an additional 10 h. After cooling and concentration of the mixture. column chromatography (silica gel, CH,Cl,/petroleum ether 1/1) and crystalliration from CH,CI, yielded 562 mg (1.81 mniol, 94%) I. 2: DlBAH (12 mmol. 1 M in hexane) was treated with 1 (0.60 g. 1.93 mmol) in dry CH2CI, (20 mL) under N, at ~ 20 C and stirred. The mixture was stirred at -20°C for 3.5 h. treated with aqueous citric acid ( 0 . 5~. 16 mL) and diluted with aqueous citric acid (0.5 M. 12 mL) and CH,CI, (12 mL) at room temperature. The organic phase was concentrated and purified by column chromatography (silica gel, CH,CI,:petroleum ether I l l ) . The colorless pyrrole 2 (190.5 mg, 0.64 mmol) crystallized from CH2C12/hexane (1 ' 5 ) in 33% yield. 3 . A solution of2 181 mg. 0.27 mmol) in CH2CI, (0.6 mL) was treated under N, with CH,OH (0.84 mL). aceticacid (78 pL). and 30% formaldehyde solution (111 pL). The mixture has protected from light, stirred for 7 d at room temperature under N,, and then concentrated. The residue was dissolved in benzene (2 mL) under N, and treated Mith dichlorodicyanobenzoquinone (DDQ) (42.3 mg, 0.18 mmol) in ben-Lene (4 mL). After2.5 h a t room temperature, the solution wasdiluted with CH,CI, (7 mL) and shaken with phosphate buffer (pH 7) (0.
The reaction of the (diisopropy1amino)phosphaethyne (1) with diazo compounds of the type R1R2C=N2 (2a-2c) unexpectedly leads in high yields (SO-SO%) to the l-aza-3,4-diphospholene derivatives 3a-3c, a new class of heterocycles.NMR investigations of the analogous reaction of 1 with diazocyclopentadiene 2d show that the multi-step formation of 3a-3c proceeds via the l-aza-3,4-diphospholes 6a-6d as intermediates.Phosphaalkynes RC=P exhibit a pronounced reactivity towards 1,3-dipoles and, therefore, undergo [3 + 21 cycloaddition with diazo compounds R1(H)C=N2 or R1R2C=N2 yielding regiospecifically 1 H-l,2,4-or 3 H-l,2,4-diazaphospholes[2]. Scheme 1In order to examine the cycloaddition potential of aminosubstituted phosphaalkynes R2N-C=P['s3I in comparison with the alkyl compounds RC=P we studied reactions of iPr2N-C=P (1) with diazomethane derivatives. With the reactants R'(H)C=N2 the 1,3-dipolar cycloaddition of 1 proceeds as in the case of the alkyl-substituted phosphaalkynes [eq. (la)] affording 1 H-l,2,4-dia~aphospholes[~], however, with loss of regioselectivity. Hence formation of the regioisomeric 1 H-l,2,3-diazaphospholes as side products is observed. Using R1R2C=N2 (2a-2c) as 1,3-dipolar reagents, we found a surprising substituent effect for 1 leading to the novel phosphaheterocycles 3a-3c according to Scheme 2 and not to the expected 3H-or 4H-1,2,4-diazaphospholes [eq. (1 b)].The reactions of 1 with 2a-2c take place at 25 "C in toluene solution with evolution of N2 and elimination of iPr2N-C=N which is collected in a cold trap (-196°C) [ and detected by GC-MS spectroscopy. During this process the color of the reaction mixture changes from red to brown. 31P-NMR control measurements indicate complete consumption of 1 together with an almost quantitative generation of 3a-3c after 3 to 5 hours. While 3a and 3c are stable at room temperature, even in organic solvents, the mixture of the diastereomers 3b undergoes a slow decomposition in toluene solution giving rise to the formation of a series of unidentified phosphorus-containing compounds. The molecular structures of 3a-3c were deduced from spectroscopic investigations and conclusively ascertained by an X-ray diffraction study of single crystals of 3c. The mass spectra (70 eV) of 3a and 3c show the molecular peaks M+(3a) = 520 and M+(3c) = 516 with relative intensities of 52 and 22%, respectively. The 31P resonances of 3a-3c result from an AB spin system and appear in the high-field region (lip = -109.6 to -128.6) with lJ(PA,PB) couplings of 190-203 Hz. Chemical shifts and coupling constants are characteristic of diph~sphjranes [~], especially for spirocyclic derivativesL61. Due to the chirality of the P atoms in 3a-3c
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