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首页> 外文期刊>Inorganica Chimica Acta >Diffusion NMR studies on neutral and cationic square planar palladium(II) complexes
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Diffusion NMR studies on neutral and cationic square planar palladium(II) complexes

机译:中性和阳离子方形平面钯(II)配合物的扩散NMR研究

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Diffusion NMR investigations were carried out in CD2Cl2 for a series of neutral (1–7) and cationic (8–10) square planar palladium complexes. Diffusion data were elaborated through a modified Stokes–Einstein equation that takes into account the size and shape of molecules. The hydrodynamic volume at infinite dilution of all complexes was found to be similar to the crystallographic volume and always much larger than the van der Waals volume. The self-aggregation tendency of [Pd(N,C)(N,N)][PF6] ionic complexes [(N,C) = (C6H4-(Ph)C(O)-C@N-Et); 8, (N,N) = 2,20-bipirydine; 9, (N,N) = (2,6-(iPr)2-C6H3)N@C(Me)- C(Me)@N(2,6-(iPr)2-C6H3); 10, (N,N) = (2,6-(iPr)2-C6H3)N@C(R0)-C(R0)@N(2,6-(iPr)2-C6H3), R02 = naphthalene- 1,8-diyl] was investigated by performing 1H and 19F diffusion experiments as a function of the concentration. Clear evidence for the formation of ion triples containing two cationic units was obtained for 8, most likely due to the establishment of a weak Pd O interaction. The tendency to form ion triples was much reduced in 9 and 10, having an increased steric hindrance in the apical positions. While 9 showed the usual tendency to afford a mixture of free ions and ion pairs, solvated ions were the predominant species in the case of 10 even at high concentration values (approaching 100 mM).
机译:在CD2Cl2中对一系列中性(1–7)和阳离子(8–10)方形平面钯配合物进行了NMR扩散研究。扩散数据通过修改后的Stokes-Einstein方程进行阐述,该方程考虑了分子的大小和形状。发现所有络合物无限稀释时的流体动力学体积与晶体学体积相似,并且总是比范德华体积大得多。 [Pd(N,C)(N,N)] [PF6]离子络合物的自聚集趋势[(N,C)=(C6H4-(Ph)C(O)-C @ N-Et); 8,(N,N)= 2,20-联吡啶。 9,(N,N)=(2,6-(iPr)2-C6H3)N @ C(Me)-C(Me)@N(2,6-(iPr)2-C6H3); 10,(N,N)=(2,6-(iPr)2-C6H3)N @ C(R0)-C(R0)@N(2,6-(iPr)2-C6H3),R02 =萘-通过进行1H和19F扩散实验作为浓度的函数,研究了1,8-二基]。对于8,获得了包含两个阳离子单元的离子三元组形成的明确证据,最可能的原因是建立了弱的Pd O相互作用。形成离子三重态的趋势在9和10中大大降低,在顶端位置的位阻增加。尽管9显示出通常提供自由离子和离子对混合物的趋势,但即使在高浓度值(接近100 mM)下,在10的情况下,溶剂化离子也是主要的物种。

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