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Polymer templated nickel cobaltate for energy storage

机译:聚合物模板化钴酸镍用于储能

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In order to take advantage of the increasing sophistication of technology for harnessing renewable energy resources, serious attention must be paid to how to store and re-access this energy. Electrochemical storage, in the guise of batteries, supercapacitors and pseudocapacitors, has attracted much attention as a viable option for enhanced energy storage applications. But in order for these technologies to be implemented successfully we need to find materials that perform better and are relatively easy to synthesise. Bimetallic transition metal oxides are materials that are readilysynthesisedandmaybemultifunctional, i.e.have a role at the electrochemical atomic level as well as the device level. In order for these materials towork efficiently in new generation systems based on sodium and lithium they also need to be mesoporous. This can be achieved by trying to find synthetic techniques that produce specific, highly regulated nanostructures or by adding a 'templating' agent during the bulk synthesis step. We have investigated the simple hydrothermal preparation of a number of nickel cobaltate (NiCo_2O_4) materials using polymertem plates, eggshell membrane (ESM) and polymethyl methacrylate (PMMA), as potential electrode materials for supercapacitors. The ESM was expected to act as a fibrous, random polymeric template while the PMMA should produce a much more ordered material. Electrochemical testing showed that the different templates have led to changes in material morphology and these have resulted in a difference in electrochemical properties. Templated materials increased specific capacitance compared to non-templated and the choice of template could influence the capacitance by as much as 30%.
机译:为了利用日益成熟的技术来利用可再生能源,必须认真注意如何存储和重新利用该能源。作为电池,超级电容器和伪电容器的幌子,电化学存储作为增强型能量存储应用的可行选择受到了广泛的关注。但是,为了成功实施这些技术,我们需要找到性能更好且相对易于合成的材料。双金属过渡金属氧化物是易于合成并且可以是多功能的材料,即在电化学原子级以及器件级均具有作用。为了使这些材料在基于钠和锂的新一代系统中高效工作,它们还需要是介孔的。这可以通过尝试找到产生特定的,高度调控的纳米结构的合成技术,或在本体合成步骤中添加“模板剂”来实现。我们研究了使用聚合物板,蛋壳膜(ESM)和聚甲基丙烯酸甲酯(PMMA)作为超级电容器的潜在电极材料,对许多钴酸镍(NiCo_2O_4)材料进行简单的水热制备。预期ESM可以充当纤维状的无规聚合物模板,而PMMA可以生产出更有序的材料。电化学测试表明,不同的模板导致了材料形态的变化,这些变化导致了电化学性能的差异。模板材料比非模板材料增加了比电容,模板的选择可能会影响电容达30%。

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