Department of Chemistry and Biochemistry, Montana State University, Bozeman, Montana 59715, USA.
Phys Chem Chem Phys. 2014 Jan 28;16(4):1487-99. doi: 10.1039/c3cp53815j.
UV-pump/broadband-mid-IR-probe transient absorption (TA) experiments and ab initio quantum mechanical (QM) calculations were used to investigate the photophysics in heavy water of the neutral and acid forms of guanosine 5'-monophosphate (GMP and GMPD(+), respectively). Excited GMP undergoes ultrafast internal conversion (IC) and returns to the electronic ground state in less than one picosecond with a large amount of excess vibrational energy. The spectroscopic signals are dominated by vibrational cooling - a process in which the solute dissipates vibrational energy to the solvent. For neutral GMP, cooling proceeds with a time constant of 3 ps. Following IC, at least some medium-frequency modes such as the carbonyl stretch and an in-plane ring vibration are excited, suggesting that the vibrational energy distribution is non-statistical. This is consistent with predicted structural changes upon passage through the S1/S0 conical intersection. GMPD(+) differs from GMP by a single deuteron at the N7 position, but has a dramatically longer lifetime of 200 ps. Vibrational cooling of the S1 state of GMPD(+) was monitored via several medium-frequency modes that were assigned using QM calculations. These medium-frequency modes are also vibrationally excited in a non-statistical fashion. Excitation of these modes is in line with the change in geometry at the S1 minimum of GMPD(+) predicted by QM calculations. Furthermore, these modes relax at different rates, fully consistent with QM calculations, which predict that excited vibrational states of the carbonyl stretch couple strongly to the D2O solvent and thus deactivate via intermolecular energy transfer (IET). In contrast, the ring stretch couples strongly to other ring modes of the guanine chromophore and appears to decay via intramolecular vibrational energy redistribution (IVR).
采用紫外抽运/宽带中红外探测瞬态吸收(TA)实验和从头算量子力学(QM)计算研究了鸟苷 5'-单磷酸(GMP 和 GMPD(+),分别为中性和酸性形式)在重水中的光物理性质。激发的 GMP 经历超快内转换(IC),在不到 1 皮秒内以大量过剩振动能返回电子基态。光谱信号主要由振动冷却主导——这是溶质将振动能耗散到溶剂中的过程。对于中性 GMP,冷却过程的时间常数为 3 ps。在 IC 之后,至少一些中频模式,如羰基伸缩和平面内环振动被激发,这表明振动能分布是非统计的。这与通过 S1/S0 锥形交叉时预测的结构变化一致。GMPD(+)与 GMP 仅在 N7 位置相差一个氘原子,但寿命长 200 ps。通过 QM 计算分配的几个中频模式监测 GMPD(+)的 S1 态振动冷却。这些中频模式也以非统计的方式被激发。这些模式的激发与 QM 计算预测的 GMPD(+)S1 最小值的几何形状变化一致。此外,这些模式以不同的速率松弛,这与 QM 计算完全一致,后者预测羰基伸缩的激发振动态与 D2O 溶剂强烈耦合,因此通过分子间能量转移(IET)失活。相比之下,环伸缩强烈耦合到鸟嘌呤发色团的其他环模式,并且似乎通过分子内振动能量重新分配(IVR)衰减。