WPI-Advanced Institute for Material Research, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai 980-8577, Japan.
J Chem Phys. 2012 Dec 14;137(22):22A540. doi: 10.1063/1.4751486.
Following up on our recent study of ultrafast charge separation at oligothiophene-fullerene interfaces [H. Tamura, I. Burghardt, and M. Tsukada, J. Phys. Chem. C 115, 10205 (2011)], we present here a detailed quantum dynamical perspective on the charge transfer process. To this end, electron-phonon coupling is included non-perturbatively, by an explicit quantum dynamical treatment using the multi-configuration time-dependent Hartree (MCTDH) method. Based upon a distribution of electron-phonon couplings determined from electronic structure studies, a spectral density is constructed and employed to parametrize a linear vibronic coupling Hamiltonian. The diabatic coupling is found to depend noticeably on the inter-fragment distance, whose effect on the dynamics is here investigated. MCTDH calculations of the nonadiabatic transfer dynamics are carried out for the two most relevant electronic states and 60 phonon modes. The electron transfer process is found to be ultrafast and mediated by electronic coherence, resulting in characteristic oscillatory features during a period of about 100 fs.
继我们最近对寡聚噻吩-富勒烯界面超快电荷分离的研究[H. Tamura, I. Burghardt, 和 M. Tsukada, J. Phys. Chem. C 115, 10205 (2011)]之后,我们在此提出了关于电荷转移过程的详细量子动力学观点。为此,通过使用多组态含时哈特ree(MCTDH)方法的非微扰量子动力学处理,包括电子-声子耦合。基于从电子结构研究中确定的电子-声子耦合分布,构建了一个光谱密度并用于参数化线性振子耦合哈密顿量。发现非绝热耦合明显依赖于片段间距离,在此研究了其对动力学的影响。对两个最相关的电子态和 60 个声子模式进行了非绝热转移动力学的 MCTDH 计算。发现电子转移过程超快,并通过电子相干介导,导致在大约 100 fs 的周期内呈现出特征的振荡特征。