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大气压光电离机制。2. 苯和甲苯的情况。

Atmospheric pressure photoionization mechanisms. 2. The case of benzene and toluene.

作者信息

Tubaro Michela, Marotta Ester, Seraglia Roberta, Traldi Pietro

机构信息

CNR-Istituto di Scienze e Tecnologie Molecolari, Sezione di Padova, Corso Stati Uniti 4, 35127 Padova, Italy.

出版信息

Rapid Commun Mass Spectrom. 2003;17(21):2423-9. doi: 10.1002/rcm.1208.

Abstract

Benzene and toluene have been proposed previously as dopants in atmospheric pressure photoionization (APPI) experiments on compounds exhibiting ionization energies higher than the energy of photons used for irradiation. Their low ionization energies lead to their easy photoionization and the ions so formed lead to the ionization of analytes through charge exchange. However, some measurements have shown that some protonation reactions also take place, and a series of experiments was undertaken to investigate this unexpected behavior. It was shown that, when benzene is irradiated in the APPI source, the odd-electron molecular ions of phenol, diphenyl ether and phenoxyphenol are produced in high yield, together with protonated diphenyl ether and protonated phenoxyphenol. These results have been confirmed by deuterium labelling and MS(n) experiments. A possible mechanism is proposed, based on a radical attack by benzene molecular ions on oxygen molecules present inside the APPI source, analogous to that proposed in the literature for phenyl radicals. Similar results have been obtained with toluene, proving that APPI is able to activate a series of reactions leading to highly reactive species which are highly effective in promoting ionization of molecules with ionization energies higher than the photon energy.

摘要

先前有人提出,在对电离能高于用于辐照的光子能量的化合物进行大气压光电离(APPI)实验时,苯和甲苯可作为掺杂剂。它们的低电离能使其易于发生光电离,如此形成的离子通过电荷交换导致分析物的电离。然而,一些测量结果表明也会发生一些质子化反应,因此开展了一系列实验来研究这种意外行为。结果表明,当在APPI源中辐照苯时,会高产率地生成苯酚、二苯醚和苯氧基苯酚的奇电子分子离子,以及质子化的二苯醚和质子化的苯氧基苯酚。这些结果已通过氘标记和质谱(n)实验得到证实。基于苯分子离子对APPI源内存在的氧分子的自由基攻击,提出了一种可能的机制,这类似于文献中针对苯基自由基提出的机制。用甲苯也得到了类似的结果,证明APPI能够引发一系列反应,生成高活性物种,这些物种在促进电离能高于光子能量的分子的电离方面非常有效。

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