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Electrode Materials with Highest Surface Area and Specific Capacitance Cannot Be the Only Deciding Factor for Applicability in Energy Storage Devices: Inference of Combined Life Cycle Assessment and Electrochemical Studies

机译:具有最高表面积和特定电容的电极材料不能是能量存储装置中适用性的唯一决定性因素:引人的生命周期评估和电化学研究

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Hierachical nanosheets of Co3O4 can deliver specific capacitance of similar to 402 F g(-1), which is 50% higher than that obtained using simpler disc shaped (similar to 230 F g(1)) or conventional solid structures (similar to 150 F g(-1)). A simple question is then asked: should the particles showing other morphologies be discarded? As the electrode material is to be used in green or renewable energy technologies, the carbon footprint of each particle morphology was determined using the life cycle assessment (LCA) studies. The results led to inferences, which were strikingly different from those generally expected. It was seen that simpler morphologies, prepared using easier synthesis protocols, had five-times lower CO2 footprints than hierarchical morphology (nanosheets). The results become extremely critical for proposing their large scale industrial use. They clearly indicate that the choice of nanostructured metal oxides in energy storage devices will have to be relooked from the aspect of their own environmental impacts. Particles with lowest environmental impact but comparable specific capacitances will win over other counterparts.
机译:CO3O4的Hierachical纳米片可以提供类似于402 f G(-1)的特定电容,其比使用更简单的盘形(类似于230 f g(1))或传统的固体结构(类似于150 f g(-1))。然后问一个简单的问题:是否应该丢弃显示其他形态的粒子?由于电极材料用于绿色或可再生能源技术,因此使用生命周期评估(LCA)研究确定每种颗粒形态的碳足迹。结果导致推论,这与通常预期的那些完全不同。可以看出,使用更容易合成方案制备的更简单的形态具有比分级形态(纳米片)更低的CO2占地面积。结果对于提出大规模工业用途,这一结果非常重要。他们清楚地表明,必须从自己的环境影响的方面释衡储能装置中纳米结构金属氧化物的选择。具有最低环境影响但可比的特定电容的颗粒将取胜其他对应物。

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