Larsson Henrik R, Schröder Markus, Beckmann Richard, Brieuc Fabien, Schran Christoph, Marx Dominik, Vendrell Oriol
Department of Chemistry and Biochemistry, University of California Merced CA 95343 USA.
Division of Chemistry and Chemical Engineering, California Institute of Technology Pasadena CA 91125 USA.
Chem Sci. 2022 Aug 30;13(37):11119-11125. doi: 10.1039/d2sc03189b. eCollection 2022 Sep 28.
The infrared (IR) spectra of protonated water clusters encode precise information on the dynamics and structure of the hydrated proton. However, the strong anharmonic coupling and quantum effects of these elusive species remain puzzling up to the present day. Here, we report unequivocal evidence that the interplay between the proton transfer and the water wagging motions in the protonated water dimer (Zundel ion) giving rise to the characteristic doublet peak is both more complex and more sensitive to subtle energetic changes than previously thought. In particular, hitherto overlooked low-intensity satellite peaks in the experimental spectrum are now unveiled and mechanistically assigned. Our findings rely on the comparison of IR spectra obtained using two highly accurate potential energy surfaces in conjunction with highly accurate state-resolved quantum simulations. We demonstrate that these high-accuracy simulations are important for providing definite assignments of the complex IR signals of fluxional molecules.
质子化水团簇的红外(IR)光谱编码了关于水合质子动力学和结构的精确信息。然而,这些难以捉摸的物种的强非谐耦合和量子效应至今仍令人困惑。在此,我们报告了明确的证据,即质子化水二聚体(祖德离子)中质子转移与水分子摆动运动之间的相互作用产生了特征双峰,这一过程比之前认为的更为复杂,且对细微的能量变化更为敏感。特别是,实验光谱中迄今被忽视的低强度卫星峰现在被揭示并给出了机理解释。我们的发现依赖于使用两个高精度势能面结合高精度态分辨量子模拟获得的红外光谱进行比较。我们证明,这些高精度模拟对于明确归属流动分子复杂的红外信号非常重要。