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Numerically testing phenomenological models for conductance of a solid-state nanopore

机译:固态纳米孔电导的数值测试现象学模型

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The ionic conductance of a solid-state nanopore plays an important role in analyzing biomolecules transported through the pore. The phenomenological pore-conductance is assumed to be a sum of three contributions: bulk, surface (for a charged nanopore) and access ones. Despite being commonly used, phenomenological results were not rigorously derived in theory and their accuracies have not been tested yet. By carrying out numerical modeling on the nanopore conductance, I show that both the ion concentration and the surface charge can affect the accuracy. For a charged solid-state nanopore solvated in an intermediate-ion-concentration electrolyte (e.g. 50 mM), the phenomenological result can be substantially larger than the numerically calculated one. The criteria for properly applying phenomenological results are provided.
机译:固态纳米孔的离子电导在分析通过孔运输的生物分子中起重要作用。现象学上的孔电导被假定为三个贡献的总和:体积,表面(带电纳米孔)和接近贡献。尽管被广泛使用,但现象学的结果在理论上并未得到严格的推导,其准确性尚未得到检验。通过对纳米孔电导率进行数值建模,我发现离子浓度和表面电荷都会影响精度。对于在中等离子浓度的电解质(例如50mM)中溶剂化的带电固态纳米孔,现象学结果可以大大大于数值计算结果。提供了正确应用现象学结果的标准。

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