Laboratoire de Physique des Lasers, UMR7538 Université Paris 13-CNRS, 99 av. J.-B. Clément, F-93430 Villetaneuse, France.
Phys Chem Chem Phys. 2011 Jan 21;13(3):854-63. doi: 10.1039/c0cp01806f. Epub 2010 Nov 30.
Originating from the weak interaction, parity violation in chiral molecules has been considered as a possible origin of biohomochirality. We have proposed the observation of molecular parity violation using the two-photon Ramsey fringes technique on a supersonic beam. As a first step in this direction, a detailed spectroscopic study of methyltrioxorhenium (MTO) has been undertaken. It is an ideal test molecule as the achiral parent molecule of chiral candidates for a parity violation experiment. For the (187)Re MTO isotopologue, a combined analysis of Fourier transform microwave and infrared spectra as well as ultra-high resolution CO(2) laser absorption spectra enabled the assignment of 28 rotational lines and 71 rovibrational lines, some of them with a resolved hyperfine structure. A set of spectroscopic parameters in the ground and first excited state, including hyperfine structure constants, was obtained for the ν(as) antisymmetric Re=O stretching mode of this molecule. This result validates the experimental approach to be followed once a chiral derivative of MTO is synthesized, and shows the benefit of the combination of several spectroscopic techniques in different spectral regions, with different set-ups and resolutions. The first high resolution spectra of jet-cooled MTO, obtained on a set-up being developed for the observation of molecular parity violation, are shown, which constitutes a major step towards the targeted objective.
源于弱相互作用,手性分子中的宇称破缺被认为是生物手性的一个可能起源。我们已经提出了使用双光子拉姆齐条纹技术在超音速束上观察分子宇称破缺的方案。作为这一方向的第一步,我们对甲基三氧化铼(MTO)进行了详细的光谱研究。作为手性候选物进行宇称破缺实验的非手性母体分子,MTO 是理想的测试分子。对于(187)Re MTO 同位素,傅里叶变换微波和红外光谱以及超高分辨率 CO2 激光吸收光谱的综合分析,使得能够对 28 条转动谱线和 71 条振转谱线进行了分配,其中一些谱线具有分辨的超精细结构。获得了该分子ν(as)反对称 Re=O 伸缩模式的基态和第一激发态的一组光谱参数,包括超精细结构常数。这一结果验证了一旦合成出 MTO 的手性衍生物,将要遵循的实验方法,并展示了在不同光谱区域、不同设置和分辨率下结合几种光谱技术的优势。在为观察分子宇称破缺而开发的装置上获得了喷射冷却 MTO 的第一批高分辨率光谱,这是朝着目标迈出的重要一步。