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Measuring Quantum Capacitance in Energetically Addressable Molecular Layers

机译:测量能量可寻址分子层中的量子电容

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The Fermi level or electrochemical signature of a molecular film containing accessible orbital states is ultimately governed by two measurable series energetic components, an energy loss term related to the charging of appropriately addressable molecular orbitals (resonant or charge transfer resistance), and an energy storage or electrochemical capacitance component. The latter conservative term is further divisible into two series contributions, one being a classic electrostatic term and the other arising from the involvement and charging of quantized molecular orbital states. These can be tuned in and out of resonance with underlying electrode states with an efficiency that governs electron transfer kinetics and an energetic spread dependent on solution dielectric. These features are experimentally resolved by an impedance derived capacitance analysis, a methodology which ultimately enables a convenient spectroscopic mapping of electron transfer efficacy, and of density of states within molecular films.
机译:包含可接近轨道状态的分子膜的费米能级或电化学特征最终受两个可测量的系列高能组分,与适当可寻址的分子轨道的电荷有关的能量损失项(共振或电荷转移阻力)以及能量存储或电化学电容成分。后者的保守项又可分为两个系列,一个是经典的静电项,另一个是由量化的分子轨道态的参与和带电引起的。可以通过控制电子传输动力学和取决于溶液电介质的高能扩散的效率,调节与下层电极状态之间的共振,以调节共振频率。这些特征通过阻抗衍生的电容分析在实验上得以解决,该方法最终使电子转移效率和分子膜内态密度的便利光谱映射成为可能。

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