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Imprisoned lightning: charge transport in trehalose-derived sugar glasses

机译:被囚禁的闪电:海藻糖衍生的糖杯中的电荷传输

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摘要

Trehalose is a naturally occurring disaccharide noted for its ability to preserve the biological function of proteins and cell membranes during periods of stress-such as water deprivation or extreme temperature-by stabilizing the conformations of the macromolecules within a glassy matrix. This phenomenon makes use of the propensity for trehalose to interact strongly with protein functional groups and solvent water molecules via hydrogen bonding. Previously, it has been shown that trehalose sugar glasses also support long-range charge transport in oxidation-reduction reactions occurring between spatially separated donors and acceptors. Here, through the use of bulk Arrhenius DC-conductivity measurements, we infer that this anomalously high carrier mobility is due to proton hopping along a hydrogen bonding network formed by sorbed "water wires," a process known as the Grotthuss mechanism. Additionally, we find that the apparent activation energy of the conductivity depends non-monotonically on the bias voltage. The possibility is raised for novel photovoltaic devices based on the entrapment of photosynthetic proteins within these glasses.
机译:海藻糖是一种天然存在的二糖,因其能够通过稳定玻璃状基质中大分子的构型,在压力(例如缺水或极端温度)期间保持蛋白质和细胞膜的生物学功能而闻名。这种现象利用了海藻糖通过氢键与蛋白质官能团和溶剂水分子强烈相互作用的倾向。以前,已经表明海藻糖玻璃还支持在空间上分离的供体和受体之间发生的氧化还原反应中的长距离电荷传输。在这里,通过使用大块Arrhenius直流电导率测量,我们推断出这种异常高的载流子迁移率是由于质子沿着由吸附的“水丝”形成的氢键合网络上的质子跳跃所致,该过程称为Grotthuss机理。此外,我们发现电导率的表观活化能非单调取决于偏置电压。基于光合蛋白在这些玻璃中的截留,提出了新颖的光伏装置的可能性。

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