首页> 外文期刊>European journal of inorganic chemistry >Azide-tetrazole ring-chain isomerism in polyazido-1,3,5-triazines, triazido-s-heptazine, and diazidotetrazines
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Azide-tetrazole ring-chain isomerism in polyazido-1,3,5-triazines, triazido-s-heptazine, and diazidotetrazines

机译:聚叠氮基1,3,5-三嗪,三叠氮杂庚嗪和二叠氮四嗪中的叠氮四唑环链异构

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The azide-tetrazole isomerism in several polyazido-1,3,5-triazines, triazido-sym-heptazine, and some diazido-1,2,4,5-tetrazines was investigated by ab initio quantum chemical methods in order to determine whether the polyazides are suitable starting materials for the synthesis of the isomeric tetrazoles. The effects of solvation in CCl4, DMSO and water on this isomerism were included using the self consistent reaction field (SCRF) method. The effect of amino- and nitro-substituents on the azide-tetrazole isomerism was also examined. In the gas phase all investigated polyazidoheterocycles do not cyclize to form tetrazoles. An electron-donating amino group favors the ring closure to tetrazoles, whereas an electron-withdrawing nitro group favors the azides. Solvation in polar solvents favors the formation of a tetrazole ring system due to higher charge separation in the tetrazole ring system, but for all polyazido-1,3,5-triazines, including triazido-s-heptazine, the effects of solvation are not strong enough to shift the equilibrium to the tetrazole side, which explains why several attempts to detect these compounds have failed. The monotetetrazoles of diazidotetrazine and bis(azido)azo-1,2,4,5-tetrazine and the ditetrazole of bis(azido)hydrazo1,2,4,5-tetrazine are the minimum energy species in DMSO and water. Thus we predict that the diazidoazo- and hydrazotetrazines will readily cyclize to the tetrazoles in polar solvents.
机译:通过从头算量子化学方法研究了几种聚叠氮基1,3,5-三嗪,三叠氮基-sym-庚嗪和某些二叠氮基-1,2,4,5-四嗪中的叠氮-四唑异构体,以确定是否多叠氮化物是合成异构四唑的合适起始原料。使用自洽反应场(SCRF)方法,包括在CCl4,DMSO和水中的溶剂化作用对这种异构现象的影响。还检查了氨基和硝基取代基对叠氮化物-四唑异构体的影响。在气相中,所有研究的多叠氮杂环都不环化形成四唑。给电子的氨基有利于四唑的闭环,而吸电子的硝基有利于叠氮化物。极性溶剂中的溶剂化有助于形成四唑环系统,因为四唑环系统中的电荷分离度更高,但是对于所有聚叠氮基1,3,5-三嗪,包括三叠氮-s-庚嗪,溶剂化作用都不强足以将平衡移至四唑侧,这解释了为什么检测这些化合物的几次尝试都失败了。二叠氮四嗪和双(叠氮基)偶氮1,2,4,5-四嗪的单四唑和双(叠氮基)偶氮1,2,4,5-四嗪的二四唑是DMSO和水中的最小能量种类。因此,我们预测重氮偶氮和tetra四嗪在极性溶剂中将容易环化成四唑。

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