Department of Physics, Stony Brook University, Stony Brook, New York 11794, USA.
J Chem Phys. 2011 May 14;134(18):184309. doi: 10.1063/1.3586812.
We present a general method for tracking molecular relaxation along different pathways from an excited state down to the ground state. We follow the excited state dynamics of cytosine pumped near the S(0)-S(1) resonance using ultrafast laser pulses in the deep ultraviolet and probed with strong field near infrared pulses which ionize and dissociate the molecules. The fragment ions are detected via time of flight mass spectroscopy as a function of pump probe delay and probe pulse intensity. Our measurements reveal that different molecular fragments show different timescales, indicating that there are multiple relaxation pathways down to the ground state. We interpret our measurements with the help of ab initio electronic structure calculations of both the neutral molecule and the molecular cation for different conformations en route to relaxation back down to the ground state. Our measurements and calculations show passage through two seams of conical intersections between ground and excited states and demonstrate the ability of dissociative ionization pump probe measurements in conjunction with ab initio electronic structure calculations to track molecular relaxation through multiple pathways.
我们提出了一种从激发态到基态跟踪分子沿不同途径弛豫的通用方法。我们使用深紫外超快激光脉冲泵浦靠近 S(0)-S(1)共振的胞嘧啶,并使用强场近红外脉冲探测,这些脉冲会使分子电离和离解。碎片离子通过飞行时间质谱作为泵浦探测延迟和探测脉冲强度的函数进行检测。我们的测量结果表明,不同的分子碎片表现出不同的时间尺度,这表明存在多种弛豫途径到达基态。我们借助中性分子和分子阳离子的从头算电子结构计算,对我们的测量结果进行了解释,这些计算考虑了不同构象在弛豫回到基态的过程中,通过两个锥形交叉点之间的两个缝。我们的测量和计算结果表明,通过了两个穿过基态和激发态之间的锥形交叉点的狭缝,并证明了离解电离泵浦探测测量与从头算电子结构计算相结合,能够跟踪通过多个途径的分子弛豫。