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Dissipation enhanced vibrational sensing in an olfactory molecular switch

机译:嗅觉分子开关中的耗散增强振动感测

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Motivated by a proposed olfactory mechanism based on a vibrationally activated molecular switch, we study electron transport within a donor-acceptor pair that is coupled to a vibrational mode and embedded in a surrounding environment. We derive a polaron master equation with which we study the dynamics of both the electronic and vibrational degrees of freedom beyond previously employed semiclassical (Marcus-Jortner) rate analyses. We show (i) that in the absence of explicit dissipation of the vibrational mode, the semiclassical approach is generally unable to capture the dynamics predicted by our master equation due to both its assumption of one-way (exponential) electron transfer from donor to acceptor and its neglect of the spectral details of the environment; (ii) that by additionally allowing strong dissipation to act on the odorant vibrational mode, we can recover exponential electron transfer, though typically at a rate that differs from that given by the Marcus-Jortner expression; (iii) that the ability of the molecular switch to discriminate between the presence and absence of the odorant, and its sensitivity to the odorant vibrational frequency, is enhanced significantly in this strong dissipation regime, when compared to the case without mode dissipation; and (iv) that details of the environment absent from previous Marcus-Jortner analyses can also dramatically alter the sensitivity of the molecular switch, in particular, allowing its frequency resolution to be improved. Our results thus demonstrate the constructive role dissipation can play in facilitating sensitive and selective operation in molecular switch devices, as well as the inadequacy of semiclassical rate equations in analysing such behaviour over a wide range of parameters. (C) 2015 AIP Publishing LLC.
机译:受提议的基于振动激活的分子开关的嗅觉机制的激励,我们研究了在供体-受体对中的电子传输,该对受体与振动模式耦合并嵌入周围环境中。我们推导了一个极化子主方程,通过它我们可以研究电子自由度和振动自由度的动力学,而超出了以前采用的半经典(Marcus-Jortner)速率分析。我们证明(i)在没有振动模态的显式耗散的情况下,半经典方法通常无法捕获由主方程预测的动力学,这是因为这两种假设都是从供体到受体的单向(指数)电子转移。忽视了环境的光谱细节; (ii)通过额外地允许强耗散作用于加味剂的振动模式,我们可以恢复指数电子传递,尽管通常其速率与Marcus-Jortner表达式给出的速率不同; (iii)与没有模式耗散的情况相比,在这种强耗散状态下,分子开关区分加味剂和不加味剂的能力及其对加味剂振动频率的敏感性得到了显着提高; (iv)以前的Marcus-Jortner分析所缺少的环境细节也可以极大地改变分子开关的灵敏度,尤其是可以改善其频率分辨率。因此,我们的结果证明了耗散在促进分子开关设备中的灵敏和选择性操作中可以发挥建设性作用,以及半经典速率方程式在分析广泛参数范围内的这种行为方面的不足。 (C)2015 AIP Publishing LLC。

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