Faculty of Chemistry, University of Warsaw, al. Żwirki i Wigury 101, 02-089, Warsaw, Poland.
J Mass Spectrom. 2013 Jan;48(1):79-88. doi: 10.1002/jms.3130.
A series of α-acyloxyhydroperoxy aldehydes was analyzed with direct infusion electrospray ionization tandem mass spectrometry (ESI/MS(n)) as well as liquid chromatography coupled with the mass spectrometry (LC/MS). Standards of α-acyloxyhydroperoxy aldehydes were prepared by liquid-phase ozonolysis of cyclohexene in the presence of carboxylic acids. Stabilized Criegee intermediate (SCI), a by-product of the ozone attack on the cyclohexene double bond, reacted with the selected carboxylic acids (SCI scavengers) leading to the formation of α-acyloxyhydroperoxy aldehydes. Ionization conditions were optimized. M + H ions were not formed in ESI; consequently, α-acyloxyhydroperoxy aldehydes were identified as their ammonia adducts for the first time. On the other hand, atmospheric-pressure chemical ionization has led to decomposition of the compounds of interest. Analysis of the mass spectra (MS(2) and MS(3)) of the M + NH(4) ions allowed recognizing the fragmentation pathways, common for all of the compounds under study. In order to get detailed insights into the fragmentation mechanism, a number of isotopically labeled analogs were also studied. To confirm that the fragmentation mechanism allows predicting the mass spectrum of different α-acyloxyhydroperoxy aldehydes, ozonolysis of α-pinene, a very important secondary organic aerosol precursor, was carried out. Spectra of the two ammonium cationized α-acyloxyhydroperoxy aldehydes prepared with α-pinene, cis-pinonic acid as well as pinic acid were predicted very accurately. Possible applications of the method developed for the analysis of α-acyloxyhydroperoxy aldehydes in SOA samples, as well as other compounds containing hydroperoxide moiety are discussed.
采用直接进样电喷雾串联质谱(ESI/MS(n))和液相色谱-质谱联用(LC/MS)对一系列α-酰氧基过氧醛进行了分析。在羧酸存在下,通过液相臭氧化环已烯制备了α-酰氧基过氧醛标准品。臭氧攻击环已烯双键的副产物稳定 Criegee 中间体(SCI)与选定的羧酸(SCI 清除剂)反应,生成α-酰氧基过氧醛。优化了离子化条件。ESI 中未形成M + H离子;因此,首次将α-酰氧基过氧醛鉴定为其氨加合物。另一方面,大气压化学电离导致感兴趣的化合物分解。M + NH(4)离子的质谱(MS(2)和 MS(3))分析允许识别共同存在于所有研究化合物的碎裂途径。为了深入了解碎裂机制,还研究了一些同位素标记的类似物。为了确认碎裂机制允许预测不同α-酰氧基过氧醛的质谱,对α-蒎烯(一种非常重要的二次有机气溶胶前体)进行了臭氧化。用α-蒎烯、顺式-胡椒酸和胡椒酸制备的两种铵阳离子化α-酰氧基过氧醛的谱图预测非常准确。讨论了所开发的方法在 SOA 样品中分析α-酰氧基过氧醛以及其他含有过氧化物部分的化合物的可能应用。