Saha Koushik, Joseph Benson, Ramalakshmi Rongala, Anju R S, Varghese Babu, Ghosh Sundargopal
Department of Chemistry, Indian Institute of Technology Madras, Chennai, 600036, India.
SAIF, Indian Institute of Technology Madras, Chennai, 600036, India.
Chemistry. 2016 Jun 1;22(23):7871-8. doi: 10.1002/chem.201600181. Epub 2016 Apr 21.
Thermolysis of [CpRu(PPh2 (CH2 )PPh2 )BH2 (L2 )] 1 (Cp=η(5) -C5 Me5 ; L=C7 H4 NS2 ), with terminal alkynes led to the formation of η(4) -σ,π-borataallyl complexes [CpRu(μ-H)B{R-C=CH2 }(L)2 ] (2 a-c) and η(2) -vinylborane complexes [CpRu(R-C=CH2 )BH(L)2 ] (3 a-c) (2 a, 3 a: R=Ph; 2 b, 3 b: R=COOCH3 ; 2 c, 3 c: R=p-CH3 -C6 H4 ; L=C7 H4 NS2 ) through hydroboration reaction. Ruthenium and the HBCC unit of the vinylborane moiety in 2 a-c are linked by a unique η(4) -interaction. Conversions of 1 into 3 a-c proceed through the formation of intermediates 2 a-c. Furthermore, in an attempt to expand the library of these novel complexes, chemistry of σ-borane complex [CpRuCO(μ-H)BH2 L] 4 (L=C7 H4 NS2 ) was investigated with both internal and terminal alkynes. Interestingly, under photolytic conditions, 4 reacts with methyl propiolate to generate the η(4) -σ,π-borataallyl complexes [CpRu(μ-H)BH{R-C=CH2 }(L)] 5 and [CpRu(μ-H)BH{HC=CH-R}(L)] 6 (R=COOCH3 ; L=C7 H4 NS2 ) by Markovnikov and anti-Markovnikov hydroboration. In an extension, photolysis of 4 in the presence of dimethyl acetylenedicarboxylate yielded η(4) -σ,π-borataallyl complex [CpRu(μ-H)BH{R-C=CH-R}(L)] 7 (R=COOCH3 ; L=C7 H4 NS2 ). An agostic interaction was also found to be present in 2 a-c and 5-7, which is rare among the borataallyl complexes. All the new compounds have been characterized in solution by IR, (1) H, (11) B, (13) C NMR spectroscopy, mass spectrometry and the structural types were unequivocally established by crystallographic analysis of 2 b, 3 a-c and 5-7. DFT calculations were performed to evaluate possible bonding and electronic structures of the new compounds.
[CpRu(PPh2 (CH2 )PPh2 )BH2 (L2 )] 1(Cp = η(5) -C5 Me5;L = C7 H4 NS2)与末端炔烃发生热解反应,通过硼氢化反应生成了η(4) -σ,π-硼杂烯丙基配合物[CpRu(μ-H)B{R-C=CH2 }(L)2 ](2 a - c)和η(2) -乙烯基硼烷配合物[CpRu(R-C=CH2 )BH(L)2 ](3 a - c)(2 a,3 a:R = Ph;2 b,3 b:R = COOCH3;2 c,3 c:R = p-CH3 -C6 H4;L = C7 H4 NS2)。2 a - c中钌与乙烯基硼烷部分的HBCC单元通过独特的η(4) -相互作用相连。1向3 a - c 的转化通过中间体2 a - c的形成进行。此外,为了扩展这些新型配合物的库,研究了σ-硼烷配合物[CpRuCO(μ-H)BH2 L] 4(L = C7 H4 NS2)与内炔烃和末端炔烃的反应。有趣的是,在光解条件下,4与丙酸甲酯反应,通过马氏和反马氏硼氢化反应生成η(4) -σ,π-硼杂烯丙基配合物[CpRu(μ-H)BH{R-C=CH2 }(L)] 5和[CpRu(μ-H)BH{HC=CH-R}(L)] 6(R = COOCH3;L = C7 H4 NS2)。进一步地,在乙酰基二羧酸二甲酯存在下对4进行光解,生成了η(4) -σ,π-硼杂烯丙基配合物[CpRu(μ-H)BH{R-C=CH-R}(L)] 7(R = COOCH3;L = C7 H4 NS2)。还发现2 a - c和5 - 7中存在一种σ-键相互作用,这在硼杂烯丙基配合物中很少见。所有新化合物均通过红外光谱、(1)H、(11)B、(13)C 核磁共振光谱、质谱在溶液中进行了表征,并且通过对2 b、3 a - c和5 - 7的晶体学分析明确确定了其结构类型。进行了密度泛函理论计算以评估新化合物可能的键合和电子结构。