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Electrospun Mn₂O₃ Nanofiber Networks as Bio-Transducers: Electrical Characterization, Modeling, and DNA Sensing

机译:ElectromunMN2O₃Nanofiber网络作为生物传感器:电学特性,建模和DNA感测

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In this work, we report the synthesis and electrical characterization of electrospun manganese III oxide (Mn2O3) nanofibers and their application in chemiresistive biosensing. Here, the Mn2O3 nanofibers, which are inherently p-type semiconductors with a direct bandgap in the order of 1.2-1.4 eV, are drop cast across interdigitated electrodes to create the desired chemiresistive networks. Their I-V characteristics are governed by space charge limited current, attributing to nonlinear behavior at higher voltages. However, in the range of +/- 0.5 V, near-linear behavior is observed. Here, we have used an analogous R-C network to explain the low- and high-frequency behavior of the said nanofibers under different applied-bias conditions. Furthermore, the effect of temperature on the said nanofibers' conductive properties is investigated, and the corresponding Arrhenius activation energy is derived. We have also explored the conductance-temperature dependence concerning the nanofiber network and have analyzed the potential carrier transport mechanisms. Also, operating in the near-linearity window, we have developed a chemiresistive protocol for DNA sensing. Mn2O3 nanofibers decorated with single-stranded probe DNAs act as transducers for surface hybridization with target nucleotides. The DNA sensing carried out in this work has a dynamic concentration range of 10 fM to 10 nM, with a linear response between 100 pM and 10 nM.
机译:在这项工作中,我们报道了Electrome锰III氧化物(MN2O3)纳米纤维的合成和电学特性及其在化学生物传感中的应用。这里,Mn2O3纳米纤维是一种固有的p型半导体,其具有直接带隙的量级为1.2-1.4eV,横跨交叉的电极施放,以产生所需的化学传播网络。它们的I-V特性受到空间充电限制电流的控制,归因于较高电压下的非线性行为。但是,在+/- 0.5V的范围内,观察到近线性行为。在这里,我们使用类似的R-C网络来解释在不同施加的偏压条件下所述纳米纤维的低频和高频行为。此外,研究了温度对上述纳米纤维导电性能的影响,并导出相应的Arhenius激活能量。我们还探索了关于纳米恐怖网络的电导温度依赖性,并分析了潜在的载体运输机制。此外,在近线性窗口中运行,我们开发了一种用于DNA感测的切片方案。用单链探针DNA装饰的MN2O3纳米纤维作为与靶核苷酸表面杂交的换能器。在该工作中进行的DNA感测的动态浓度范围为10 fm至10nm,在100pm和10nm之间的线性响应。

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