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Life cycle assessment of emerging Ni–Co hydroxide charge storage electrodes: impact of graphene oxide and synthesis route

机译:新兴的Ni-Co氢氧化物电荷存储电极的生命周期评估:氧化石墨烯和合成途径的影响

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Decoupling energy supply from fossil fuels through electrification and sustainable energy management requires efficient and environmentally low-impact energy storage technologies. Potential candidates are charge storage electrodes that combine nickel and cobalt hydroxides with reduced graphene oxide (rGO) designed to achieve high-energy, high-power density and long cycling lifetimes. An early eco-efficiency analysis of these electrodes seeks to examine the impacts of materials and processes used in the synthesis, specifically while focusing on the use of rGO. The emerging electrodes synthesized by means of electrodeposition, are further compared with electrodes obtained by an alternative synthesis route involving co-precipitation. Life cycle assessment (LCA) method was applied to compare a baseline nickel–cobalt hydroxide electrode (NCED), the focal electrode integrating rGO (NCED-rGO), and the benchmark co-precipitated electrode (NCCP), for delivering the charge of 1000 mA h. Contribution analysis reveals that the main environmental hotspots in the synthesis of the NCED-rGO are the use of electricity for potentiostat, ethanol for cleaning, and rGO. Results of comparison show significantly better performance of NCED-rGO in comparison to NCED across all impact categories, suggesting that improved functionalities by addition of rGO outweigh added impacts of the use of material itself. NCED-rGO is more impactful than NCCP except for the indicators of cumulative energy demand, climate change, and fossil depletion. To produce a functional equivalent for the three electrodes, total cumulative energy use was estimated to be 78 W h for NCED, 25 W h for NCED-rGO, and 35 W h for NCCP. Sensitivity analysis explores the significance of rGO efficiency uptake on the relative comparison with NCCP, and potential impact of rGO on the category of freshwater ecotoxicity given absence of removal from the process effluent. Scenario analysis further shows relative performance of the electrodes at the range of alternative functional parameters of current density and lifetime. Lastly, the environmental performance of NCED-rGO electrodes is discussed in regard to technology readiness level and opportunities for design improvements.
机译:通过电气化和可持续能源管理将能源供应与化石燃料脱钩,需要高效且对环境影响较小的储能技术。潜在的候选电荷存储电极将镍和钴的氢氧化物与还原的氧化石墨烯(rGO)结合在一起,旨在实现高能量,高功率密度和长循环寿命。这些电极的早期生态效率分析旨在检查合成中使用的材料和工艺的影响,特别是在着重于rGO的使用方面。进一步将通过电沉积合成的新兴电极与通过涉及共沉淀的替代合成途径获得的电极进行比较。使用生命周期评估(LCA)方法比较基线镍-钴氢氧化物电极(NCED),集成聚焦电极(rGO)(NCED-rGO)和基准共沉淀电极(NCCP),以输送1000电荷毫安小时。贡献分析表明,NCED-rGO合成中的主要环境热点是使用电来恒电位仪,使用乙醇进行清洗和使用rGO。比较结果表明,与所有影响类别的NCED相比,NCED-rGO的性能要好得多,这表明通过添加rGO改进的功能胜过了使用材料本身带来的影响。除了累积能量需求,气候变化和化石消耗的指标外,NCED-rGO比NCCP更具影响力。为了产生三个电极的等效功能,NCED的总累计能量消耗估计为78 W h,NCED-rGO为25 W h,NCCP为35 W h。敏感性分析探讨了rGO效率吸收与NCCP的相对比较的重要性,以及在没有从工艺废水中去除的情况下rGO对淡水生态毒性类别的潜在影响。方案分析进一步显示了在电流密度和寿命的替代功能参数范围内电极的相对性能。最后,讨论了NCED-rGO电极的环境性能,涉及技术准备水平和改进设计的机会。

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