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Structure-Independent Proton Transport in Cerium(III) Phosphate Nanowires

机译:磷酸铈(III)纳米线中结构无关的质子传输。

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摘要

Understanding of water-related electrical conduction is of utmost importance in applications that utilize solid-state proton conductors. However, in spite of the vast amount of theoretical and experimental work published in the literature, thus far its mechanism remained unsolved. In this study, the structure-related ambient temperature electrical conduction of one-dimensional hydrophilic nanostructures was investigated. Cerium phosphate nanowires with monoclinic and hexagonal crystal structures were synthesized via the hydrothermal and ambient temperature precipitation routes, and their structural and surface properties were examined by using high-resolution transmission electron microscopy, X-ray diffractometry, nitrogen and water sorption, temperature-programmed ammonia desorption, and potentiometric titration techniques. The relative humidity (RH)-dependent charge-transport processes of hexagonal and monoclinic nanowires were investigated by means of impedance spectroscopy and transient ionic current measurement techniques to gain insight into their atomistic level mechanism. Although considerable differences in RH-dependent conductivity were first found, the: distinct characteristics collapsed into a master curve when specific surface area and acidity were taken into account, implying structure-independent proton conduction mechanism in both types of nanowires.
机译:在使用固态质子导体的应用中,了解与水有关的导电性至关重要。然而,尽管在文献中发表了大量的理论和实验工作,但迄今为止,其机理仍未得到解决。在这项研究中,研究了与结构有关的一维亲水纳米结构的环境导电性。通过水热和环境温度沉淀途径合成了具有单斜晶和六边形晶体结构的磷酸铈纳米线,并通过高分辨率透射电子显微镜,X射线衍射,氮和水吸附,程序升温对它们的结构和表面性质进行了研究。氨解吸和电位滴定技术。通过阻抗谱和瞬态离子电流测量技术研究了六角形和单斜纳米线的相对湿度(RH)依赖性电荷传输过程,以了解其原子级机理。尽管首先发现了与RH有关的电导率的显着差异,但是:当考虑到比表面积和酸度时,不同的特性塌陷成一条主曲线,这暗示了两种类型的纳米线中与结构无关的质子传导机制。

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