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Studies on energy transfer in dendrimer supermolecule using classical random walk model and Eyring model

机译:利用经典随机游走模型和Eyring模型研究树枝状大分子中的能量转移

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We have analyzed the energy transfer process in a dendrimer supermolecule using a classical random walk model and an Eyring model of membrane permeation. Here the energy transfer is considered as a multiple barrier crossing process by thermal hopping on the backbone of a cayley tree. In is shown that the mean residence time and mean first passage time, which involve explicit local escape rates, depend upon the temperature, size of the molecule, core branching, and the nature of the potential energy landscape along the cayley tree architecture. The effect of branching tries to create a uniform distribution of mean residence time over the generations and the distribution depends upon the interplay of funneling and local rates of transitions. The calculation of flux at the steady state from the Eyring model also gives a useful idea about the rate when the dendrimeric system is considered as an open system where the core is absorbing the transported energy like a photosynthetic reaction center and a continuous supply of external energy is maintained at the peripheral nodes. The effect of the above parameters of the system are shown to depend on the steady-state flux that has a qualitative resemblence with the result of the mean first passage time approach.
机译:我们已经使用经典的随机游走模型和膜渗透的Eyring模型分析了树枝状大分子中的能量转移过程。在这里,通过在cayley树的主干上进行热跳跃,能量转移被认为是多重势垒穿越过程。在图1中显示,涉及明显的局部逸出率的平均停留时间和平均第一次通过时间取决于温度,分子的大小,核心分支以及沿开莱树结构的势能景观的性质。分支的效果试图在各代之间创建平均停留时间的均匀分布,并且该分布取决于漏斗和局部过渡速率的相互作用。通过Eyring模型计算稳态下的通量,还可以得出有关树状体系统被视为开放系统的速率的有用想法,在该系统中,核心如光合作用反应中心一样吸收吸收的能量,并不断提供外部能量在外围节点上维护。系统的上述参数的影响显示为取决于稳态通量,该稳态通量与平均首次通过时间方法的结果具有定性相似性。

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