首页> 外文期刊>International Journal of Quantum Chemistry >Ab Initio Quantum Chemical Studies of Reactions in Astrophysical Ices. 4. Reactions in Ices involving HCOOH, CH_2NH, HCN, HNC, NH_3, and H_2O
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Ab Initio Quantum Chemical Studies of Reactions in Astrophysical Ices. 4. Reactions in Ices involving HCOOH, CH_2NH, HCN, HNC, NH_3, and H_2O

机译:从头开始的天体冰中反应的量子化学研究。 4.在冰中的反应涉及HCOOH,CH_2NH,HCN,HNC,NH_3和H_2O

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Ice-bound condensed-phase reactions involving formic acid (HCOOH), methylenimine (CH_2NH), hydrogen cyanide (HCN), hydrogen cyanide (HCN), hydrogen isocyanide (HNC), and ammonia (NH_3) were investigated in order to characterize possible pathways to larger organic species that are efficient at the cold temperatures prevalent in cometary nuclei and the interstellar medium. Previous laboratory and computational modeling has demonstrated that reactions between some closed-shell species can be significantly enhanced when they occur with a matrix of water ice. Certain key reactions can occur at temperatures under 100 K, in spite of having gas phase barriers that may be 30 kcal/mol or higher. The present study considered one-and two-step reactions of HCOOH and NH_3 to yield formamide (NH_2CHO), reactions between CH_2NH and HCN, HNC, NH_3, and H_2O, and the reaction of HCOOH and CH_2NH to yield glycine (NH_2CH_2CCOOH). The most favorable process identified in this work is production of NH_2CH(OH)_2, the intermediate in the two-step pathway from HCOOH and NH_3 to NH_2CHO, which is enhanced considerably when it occurs within ice but not to the extent that it is likely to occur unassisted at temperatures below 100 K.
机译:为了研究可能的途径,研究了涉及甲酸(HCOOH),亚甲基亚胺(CH_2NH),氰化氢(HCN),氰化氢(HCN),异氰化氢(HNC)和氨(NH_3)的冰封凝结反应。到在彗核和星际介质中普遍存在的寒冷温度下有效的较大有机物种。先前的实验室和计算模型已经证明,当某些封闭壳物种与水冰基质发生反应时,它们之间的反应会大大增强。尽管具有30 kcal / mol或更高的气相势垒,某些关键反应仍可能在100 K以下的温度下发生。本研究考虑了HCOOH和NH_3的一两步反应生成甲酰胺(NH_2CHO),CH_2NH与HCN,HNC,NH_3和H_2O之间的反应以及HCOOH和CH_2NH生成甘氨酸(NH_2CH_2CCOOH)的反应。在这项工作中确定的最有利的过程是生成NH_2CH(OH)_2,这是从HCOOH和NH_3到NH_2CHO的两步路径的中间产物,当它在冰中发生时会大大增强,但程度不大在低于100 K的温度下无助地发生

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