首页> 外文期刊>Rapid Communications in Mass Spectrometry: RCM >Collision-induced dissociation of synthetic polymers containing hydride groups: The case of poly(methylhydrosiloxane) homopolymers and poly(methylhydrosiloxane)-co-(dimethylsiloxane) copolymers
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Collision-induced dissociation of synthetic polymers containing hydride groups: The case of poly(methylhydrosiloxane) homopolymers and poly(methylhydrosiloxane)-co-(dimethylsiloxane) copolymers

机译:含有氢化物基团的合成聚合物的碰撞诱导解离:聚(甲基氢硅氧烷)均聚物和聚(甲基氢硅氧烷)-共-(二甲基硅氧烷)共聚物的情况

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RATIONALE: When substituting one methyl moiety by a hydrogen atom in each end-group of a trimethylsilylterminated poly(dimethylsiloxane) (PDMS), dissociation reactions of oligomers adducted with ammonium were observed to proceed at a much higher rate, evidencing the high reactivity of hydride groups. Polymeric molecules containing methylhydrosiloxane (MHS) units could thus be expected to exhibit a different tandem mass spectrometric (MS/MS) behavior from PDMS. METHODS: Trimethylsilyl-terminated PMHS and trimethylsilyl-terminated poly(MHS)-co-(DMS) were electrosprayed in the gas phase either as ammonium adducts or lithium adducts. Product ions generated upon collision-induced dissociation (CID) were accurately mass measured in an orthogonal acceleration time-of-flight mass analyzer. RESULTS In contrast to PDMS adducted with lithium, useful structural features could be obtained from product ions generated upon CID of lithium adducts of PMHS. The presence of multiple hydride groups in PMHS induced numerous rearrangements when activating ammonium adducts of these oligomers. MS/MS reactions observed for cationic adducts of MHS-DMS co-oligomers were clearly a combination of major dissociation routes established for the corresponding homopolymers. However, the concerted loss of H2 and ammonia typically observed from ammonium adducts of PMHS was always shown to generate a quite abundant product ion even from cooligomers enriched with DMS units. CONCLUSIONS: The high reactivity of hydride moieties, previously evidenced when these groups were at the end of PDMS chains, is also at work in PMHS, where each monomer contains a S-iH function. The presence of these hydride groups would increase the nucleophilic character of the oxygen atoms, favoring a tight bonding of lithium, and hence allowing in-chain cleavages to occur. In PMHS ammonium adducts, the particular reactivity of hydride moieties was illustrated by multiple hydride transfers but also by a dehydrogenation reaction systematically observed to proceed, together with the loss of ammonia, from all precursor ions. This latter reaction remained a very competitive process even from MHS/DMS cooligomers with a low relative number of MHS units.
机译:理由:当三甲基甲硅烷基封端的聚二甲基硅氧烷(PDMS)的每个端基中的一个氢原子取代一个甲基部分时,观察到与铵加成的低聚物的离解反应以更高的速率进行,表明氢化物的高反应活性组。因此,可以预期,包含甲基氢硅氧烷(MHS)单元的聚合物分子将表现出与PDMS不同的串联质谱(MS / MS)行为。方法:将三甲基甲硅烷基封端的PMHS和三甲基甲硅烷基封端的聚(MHS)-共-(DMS)在气相中以铵加合物或锂加合物形式电喷雾。碰撞诱导解离(CID)时生成的产物离子在正交加速飞行时间质量分析仪中精确测量质量。结果与锂加成的PDMS相比,可以通过CHS的PMHS锂加成物的CID生成的产物离子获得有用的结构特征。当激活这些低聚物的铵加合物时,PMHS中存在多个氢化物基团会引起许多重排。观察到的MHS-DMS共低聚物阳离子加合物的MS / MS反应显然是为相应的均聚物建立的主要离解途径的组合。然而,总是显示出从PMHS的铵加合物中通常观察到的H2和氨的协同损失,即使从富含DMS单元的Cooligomers中也总是产生相当丰富的产物离子。结论:氢化物部分的高反应活性,以前在这些基团位于PDMS链末端时得到了证明,在PMHS中也起作用,其中每个单体均具有S-iH功能。这些氢化物基团的存在将增加氧原子的亲核特性,有利于锂的紧密键合,因此允许发生链内裂解。在PMHS铵加合物中,氢化物部分的特殊反应性是通过多次氢化物转移以及系统地观察到的进行的脱氢反应以及氨从所有前体离子中的损失进行说明的。后者的反应仍然是一个非常有竞争力的过程,即使是MHS / DMS Cooligomers具有相对较低的MHS单元数。

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