Departamento de Química Física, Universidad del País Vasco (UPV-EHU), Ap. 644, 48080 Bilbao, Spain.
J Chem Phys. 2013 Mar 21;138(11):114304. doi: 10.1063/1.4794693.
The conformational and structural preferences of phenazone (antipyrine), the prototype of non-opioid pyrazolone antipyretics, have been probed in a supersonic jet expansion using rotational spectroscopy. The conformational landscape of the two-ring assembly was first explored computationally, but only a single conformer was predicted, with the N-phenyl and N-methyl groups on opposite sides of the pyrazolone ring. Consistently, the microwave spectrum evidenced a rotational signature arising from a single molecular structure. The spectrum exhibited very complicated fine and hyperfine patterns (not resolvable with any other spectroscopic technique) originated by the simultaneous coupling of the methyl group internal rotation and the spins of the two (14)N nuclei with the overall rotation. The internal rotation tunnelling was ascribed to the C-CH3 group and the barrier height established experimentally (7.13(10) kJ mol(-1)). The internal rotation of the N-CH3 group has a lower limit of 9.4 kJ mol(-1). The structure of the molecule was determined from the rotational parameters, with the phenyl group elevated ca. 25° with respect to the average plane of the pyrazolic moiety and a phenyl torsion of ca. 52°. The origin of the conformational preferences is discussed in terms of the competition between intramolecular C-H···N and C-H···O weak hydrogen bonds.
采用旋转光谱法在超声速射流膨胀中探测了非阿片类吡唑酮类解热药原型苯唑酮(安替比林)的构象和结构偏好。首先通过计算探索了双环组件的构象景观,但仅预测了一种构象,其中 N- 苯基和 N- 甲基基团位于吡唑酮环的相对两侧。一致地,微波光谱证明了源于单个分子结构的旋转特征。该光谱表现出非常复杂的精细和超精细图案(任何其他光谱技术都无法分辨),这是由甲基内部旋转和两个(14)N 核的自旋与整体旋转的同时耦合引起的。内部旋转隧道归因于 C-CH3 基团,并且实验确定的势垒高度(7.13(10)kJ mol-1)。N-CH3 基团的内部旋转具有 9.4 kJ mol-1 的下限。从旋转参数确定了分子的结构,其中苯基基团相对于吡唑部分的平均平面升高约 25°,并且苯基扭转约 52°。构象偏好的起源是通过分子内 C-H···N 和 C-H···O 弱氢键之间的竞争来讨论的。