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首页> 外文期刊>Journal of the American Chemical Society >THE CATALYTIC TRANSFORMATION OF BENZO[B]THIOPHENE TO 2-ETHYLTHIOPHENOL BY A SOLUBLE RHODIUM COMPLEX - THE REACTION MECHANISM INVOLVES RING OPENING PRIOR TO HYDROGENATION
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THE CATALYTIC TRANSFORMATION OF BENZO[B]THIOPHENE TO 2-ETHYLTHIOPHENOL BY A SOLUBLE RHODIUM COMPLEX - THE REACTION MECHANISM INVOLVES RING OPENING PRIOR TO HYDROGENATION

机译:可溶性铑络合物催化苯并[B]噻吩催化转化为2-乙基噻吩酚-加氢前反应机理涉及开环

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摘要

The thermally generated 16-electron fragment [(triphos)RhH] reacts with benzo[b]thiophene (BT) by C-S bond scission to ultimately yield the 2-vinylthiophenolate complex (triphos)Rh[eta(3)-S(C6H4)CH=CH2] (1), which is an efficient catalyst precursor for the hydrogenation of BT into 2-ethylthiophenol (ETSH) and, to a lesser extent, into 2,3-dihydrobenzo[b]thiophene (DHBT) at 160 degrees C and 30 atm H-2 [triphos = MeC(CH(2)PPh(2))(3)]. The mechanism of this unusual catalytic transformation has been established by high pressure NMR spectroscopic (HPNMR) studies combined with the isolation and characterization of key species related to the catalysis. Under catalytic conditions 1 was shown by HPNMR to be completely transformed into (triphos)Rh(H)(2)[o-S(C6H4)C2H5] (2) and [(eta(2)-triphos)Rh{mu-o-S(C6H4)C2H5}](2) (3); removal of H-2 in the presence of ETSH leads to the quantitative formation of (triphos)RhH[o-S(C6H4)C2H5](2) (4), which is also the terminal state of the catalytic system in all experiments carried out in a high pressure reactor under various reaction conditions. The dimer 3 was prepared in a pure form by reaction of (triphos)RhH3 with 1 equiv of ETSH in THF and reacted with excess ETSH to produce 4, with H-2 to give 2, and with CO to yield (triphos)RhH(CO)[o-S(C6H4)C2H5] (6) Conversely, 3 could be obtained by thermally induced reduction elimination of H-2 from 2 even under 30 atm of H-2 or of ETSH from 4. The formation of the dihydride 2 from the vinylthiophenolate derivative 1 under H-2 (>15 atm) was also observed by HPNMR; this reaction was mimicked by the stepwise addition of H+ to yield [(triphos)Rh{eta(4)-S(C6H4)CH(CH3)}]BF4 (7) Reaction of the latter complex with H- produces (triphos)RhH[eta(2)-S(C6H4)CH(CH3)] (8), which converts to the dimer 3 by reductive coupling of the terminal hydride ligand with the metalated alkyl substituent in the thioligand, via the unsaturated fragment [(triphos)Rh{o-S(C6H4)C2H5}]. In the mechanistic picture proposed, the catalytically active species for both reactions is [(triphos)RhH] generated from 2 by the rate-determining reductive elimination of ETSH. The hydrogenation of BT to ETSH occurs after the substrate has been C-S inserted, although hydrogenation to DHBT also takes place as a minor, parallel path. Then eta(1)-S and eta(2)-2,3-BT isomers probably exist in equilibrium, but the eta(1)-S intermediate prevails over the eta(2)-2,3 isomer for steric reasons, thus determining the chemoselectivity of the reaction. The chemistry herein described provides further insight into the mechanistic aspects of HDS reactions on solid catalysts. [References: 67]
机译:热产生的16电子片段[(triphos)RhH]通过CS键断裂与苯并[b]噻吩(BT)反应,最终生成2-乙烯基硫酚盐络合物(triphos)Rh [eta(3)-S(C6H4)CH = CH2](1),它是将BT在160℃下氢化成2-乙基硫代苯酚(ETSH),并在较小程度上氢化成2,3-二氢苯并[b]噻吩(DHBT)的有效催化剂前体。 30 atm H-2 [triphos = MeC(CH(2)PPh(2))(3)]。通过高压NMR光谱(HPNMR)研究以及与催化相关的关键物质的分离和表征,已经建立了这种异常催化转化的机理。在催化条件下,HPNMR显示1完全转化为(triphos)Rh(H)(2)[oS(C6H4)C2H5](2)和[(eta(2)-triphos)Rh {mu-oS(C6H4) )C2H5}](2)(3);在ETSH存在下去除H-2导致定量形成(triphos)RhH [oS(C6H4)C2H5](2)(4),这也是在在各种反应条件下的高压反应器。通过使(triphos)RhH3与1当量的ETSH在THF中反应,以纯净的形式制备二聚体3,并与过量的ETSH反应生成4,与H-2生成2,并与CO生成(triphos)RhH(相反地​​,CO)[oS(C6H4)C2H5](6)相反,即使在30 atm的H-2或ETSH在4 at的ETSH条件下,通过热诱导从2去除H-2仍可得到3。通过HPNMR也观察到H-2(> 15atm)下的乙烯基硫酚酸酯衍生物1。通过逐步添加H +来模拟该反应,得到[(triphos)Rh {eta(4)-S(C6H4)CH(CH3)}] BF4(7)后者与H-的反应生成(triphos)RhH [eta(2)-S(C6H4)CH(CH3)](8),其通过末端氢化物配体与硫代配体中的金属化烷基取代基经由不饱和片段[(triphos)还原偶联而转化为二聚体3 Rh {oS(C6H4)C2H5}]。在所建议的机理图中,两个反应的催化活性物质是[2]通过速率确定的ETSH还原消除而生成的[(triphos)RhH]。 BT氢化为ETSH发生在底物已被C-S插入后,尽管氢化为DHBT也是作为次要的平行路径进行的。然后eta(1)-S和eta(2)-2,3-BT异构体可能处于平衡状态,但出于空间原因,eta(1)-S中间体优先于eta(2)-2,3异构体,因此确定反应的化学选择性。本文描述的化学方法提供了对固体催化剂上HDS反应机理的进一步了解。 [参考:67]

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