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首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Tensor network methods for the simulation of open quantum dynamics in multichromophore systems: Application to singlet fission in novel pentacene dimers
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APS -APS March Meeting 2017 - Event - Tensor network methods for the simulation of open quantum dynamics in multichromophore systems: Application to singlet fission in novel pentacene dimers

机译:APS -APS 2017年3月会议-活动-用于多发色团系统中开放量子动力学仿真的张量网络方法:在新型并五苯二聚体中的单重态裂变中的应用

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Singlet fission (SF) is an ultrafast process in which a singlet exciton spontaneously converts into a pair of entangled triplet excitons on neighbouring organic molecules. As a mechanism of multiple exciton generation, it has been suggested as a way to increase the efficiency of organic photovoltaic devices, and its underlying photophysics across a wide range of molecules and materials has attracted significant theoretical attention. Recently, a number of studies using ultrafast nonlinear optics have underscored the importance of intramolecular vibrational dynamics in efficient SF systems, prompting a need for methods capable of simulating open quantum dynamics in the presence of highly structured and strongly coupled environments. Here, a combination of ab initio electronic structure techniques and a new tensor-network methodology for simulating open vibronic dynamics is presented and applied to a recently synthesised dimer of pentacene (DP-Mes). We show that ultrafast (300 fs) SF in this system is driven entirely by symmetry breaking vibrations, and our many-body approach enables the real-time identification and tracking of the "functional' vibrational dynamics and the role of the "bath"-like parts of the environment. Deeper analysis of the emerging wave functions points to interesting links between the time at which parts of the environment become relevant to the SF process and the optimal topology of the tensor networks, highlighting the additional insight provided by moving the problem into the natural language of correlated quantum states and how this could lead to simulations of much larger multichromophore systems
机译:单重态裂变(SF)是一个超快过程,其中,单重态激子自发地转换为相邻有机分子上的一对纠缠的三重态激子。作为产生多种激子的机制,已提出将其作为提高有机光伏器件效率的一种途径,其在广泛的分子和材料中的潜在光物理特性已引起了理论上的重大关注。最近,许多使用超快非线性光学的研究都强调了在高效SF系统中分子内振动动力学的重要性,从而引发了人们对在高度结构化和强耦合环境中能够模拟开放量子动力学的方法的需求。在这里,提出了从头算电子结构技术和新的张量网络方法的组合,用于模拟开放的电子振动动力学,并将其应用于并五苯(DP-Mes)的最近合成二聚体。我们证明了该系统中的超快(300 fs)SF完全由对称性打破振动驱动,我们的多体方法可实时识别和跟踪“功能性”振动动力学以及“浴”的作用-对新兴波函数的更深入分析指出,环境中的某些部分与SF过程相关的时间与张量网络的最佳拓扑之间的有趣联系,突出了通过解决问题提供的其他见解进入相关量子态的自然语言,以及这如何导致模拟更大的多发色团系统

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