Procacci Barbara, Roy Soumya S, Norcott Philip, Turner Norman, Duckett Simon B
Centre for Hyperpolarisation in Magnetic Resonance, Department of Chemistry, York Science Park , University of York , York YO10 5NY , United Kingdom.
Accelerator Research Group, University of Huddersfield , Queensgate, Huddersfield HD1 3DH , United Kingdom.
J Am Chem Soc. 2018 Dec 5;140(48):16855-16864. doi: 10.1021/jacs.8b10923. Epub 2018 Nov 21.
Diazirines are important for photoaffinity labeling, and their photoisomerization is relatively well-known. This work shows how hyperpolarized NMR spectroscopy can be used to characterize an unstable diazo-compound formed via photoisomerization of a N-labeled silyl-ether-substituted diazirine. This diazirine is prepared in a nuclear spin singlet state via catalytic transfer of spin order from para-hydrogen. The active hyperpolarization catalyst is characterized to provide insight into the mechanism. The photochemical isomerization of the diazirine into the diazo-analogue allows the NMR invisible nuclear singlet state of the parent compound to be probed. The identity of the diazo-species is confirmed by trapping with N-phenyl maleimide via a cycloaddition reaction to afford bicyclic pyrazolines that also show singlet state character. The presence of singlet states in the diazirine and the diazo-compound is validated by comparison of experimental nutation behavior with theoretical simulation. The magnetic state lifetime of the diazo-compound is determined as 12 ± 1 s in CDOD solution at room temperature, whereas its chemical lifetime is measured as 100 ± 5 s by related hyperpolarized NMR studies. Indirect evidence for the generation of the photoproduct para-N is presented.
重氮丙环对于光亲和标记很重要,并且它们的光异构化相对广为人知。这项工作展示了如何使用超极化核磁共振光谱来表征通过N标记的甲硅烷基醚取代的重氮丙环的光异构化形成的不稳定重氮化合物。这种重氮丙环通过来自仲氢的自旋序催化转移以核自旋单重态制备。对活性超极化催化剂进行表征以深入了解其机理。重氮丙环光化学异构化为重氮类似物使得能够探测母体化合物的核磁共振不可见核单重态。通过与N-苯基马来酰亚胺通过环加成反应捕获以得到也显示单重态特征的双环吡唑啉,从而确认了重氮物种的身份。通过将实验章动行为与理论模拟进行比较,验证了重氮丙环和重氮化合物中单重态的存在。在室温下,重氮化合物在CDOD溶液中的磁态寿命确定为12±1秒,而通过相关的超极化核磁共振研究测量其化学寿命为100±5秒。给出了光产物对-N生成的间接证据。