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双(2,4-二硝基苯基)磷酸酯与肼和过氧化氢的反应。O-磷酸化和N-磷酸化的比较。

Reaction of bis(2,4-dinitrophenyl) phosphate with hydrazine and hydrogen peroxide. Comparison of O- and N- phosphorylation.

作者信息

Domingos Josiel B, Longhinotti Elisane, Brandão Tiago A S, Santos Leonardo S, Eberlin Marcos N, Bunton Clifford A, Nome Faruk

机构信息

Chemistry Department, Federal University of Santa Catarina, Florianópolis, SC, 88040-900, Brazil.

出版信息

J Org Chem. 2004 Nov 12;69(23):7898-905. doi: 10.1021/jo048737k.

Abstract

Nonionic hydrazine reacts with anionic bis(2,4-dinitrophenyl) phosphate (BDNPP), giving 2,4-dinitrophenyl hydrazine and dianionic 2,4-dinitrophenyl phosphate by an S(N)2(Ar) reaction, and at the phosphoryl center, giving 2,4-dinitrophenoxide ion and a transient phosphorylated hydrazine that rearranges intramolecularly to N-(2,4-dinitrophenyl)-N-phosphonohydrazine. Approximately 58% of the reaction at pD = 10 occurs by N-phosphorylation, as shown by (31)P NMR spectroscopy. Reaction of HO(2)(-) is wholly at phosphorus, and the intermediate peroxophosphate reacts intramolecularly, displacing a second 2,4-dinitrophenoxide ion, or with H(2)O(2), giving 2,4-dinitrophenyl phosphate and O(2). Rate constants of O- and N-phosphorylation in reactions at phosphorus of NH(2)NH(2), HO(2)(-), and NH(2)OH and its methyl derivatives follow Bronsted relationships with similar slopes, but plots differ for oxygen and nitrogen nucleophiles. The reaction with NH(2)NH(2) has been probed by using both NMR spectroscopy and electrospray ionization mass and tandem mass spectrometry, with the novel interception of key reaction intermediates in the course of reaction.

摘要

非离子型肼与阴离子型双(2,4-二硝基苯基)磷酸酯(BDNPP)反应,通过双分子亲核取代芳环反应(S(N)2(Ar))生成2,4-二硝基苯基肼和二阴离子型2,4-二硝基苯基磷酸酯,并且在磷酰基中心生成2,4-二硝基苯氧离子和一种瞬态磷酸化肼,该瞬态磷酸化肼会发生分子内重排生成N-(2,4-二硝基苯基)-N-膦酰肼。如(31)P核磁共振波谱所示,在pD = 10时,约58%的反应是通过N-磷酸化进行的。HO(2)(-)的反应完全发生在磷上,中间产物过氧磷酸酯会发生分子内反应,取代第二个2,4-二硝基苯氧离子,或者与H(2)O(2)反应生成2,4-二硝基苯基磷酸酯和O(2)。NH(2)NH(2)、HO(2)(-)、NH(2)OH及其甲基衍生物在磷上发生反应时,O-磷酸化和N-磷酸化的速率常数符合具有相似斜率的布朗斯特关系,但氧亲核试剂和氮亲核试剂的曲线有所不同。通过使用核磁共振波谱以及电喷雾电离质谱和串联质谱对与NH(2)NH(2)的反应进行了探究,在反应过程中成功捕捉到了关键反应中间体。

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