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一种由双膜电池结构实现的具有成本效益的碱性多硫化物-空气氧化还原液流电池。

A cost-effective alkaline polysulfide-air redox flow battery enabled by a dual-membrane cell architecture.

作者信息

Xia Yuhua, Ouyang Mengzheng, Yufit Vladimir, Tan Rui, Regoutz Anna, Wang Anqi, Mao Wenjie, Chakrabarti Barun, Kavei Ashkan, Song Qilei, Kucernak Anthony R, Brandon Nigel P

机构信息

Department of Earth Science and Engineering, Imperial College London, London, SW7 2AZ, UK.

Addionics Ltd., Imperial White City Incubator, 80 Wood Lane, London, W12 0BZ, UK.

出版信息

Nat Commun. 2022 May 2;13(1):2388. doi: 10.1038/s41467-022-30044-w.

Abstract

With the rapid development of renewable energy harvesting technologies, there is a significant demand for long-duration energy storage technologies that can be deployed at grid scale. In this regard, polysulfide-air redox flow batteries demonstrated great potential. However, the crossover of polysulfide is one significant challenge. Here, we report a stable and cost-effective alkaline-based hybrid polysulfide-air redox flow battery where a dual-membrane-structured flow cell design mitigates the sulfur crossover issue. Moreover, combining manganese/carbon catalysed air electrodes with sulfidised Ni foam polysulfide electrodes, the redox flow battery achieves a maximum power density of 5.8 mW cm at 50% state of charge and 55 °C. An average round-trip energy efficiency of 40% is also achieved over 80 cycles at 1 mA cm. Based on the performance reported, techno-economic analyses suggested that energy and power costs of about 2.5 US$/kWh and 1600 US$/kW, respectively, has be achieved for this type of alkaline polysulfide-air redox flow battery, with significant scope for further reduction.

摘要

随着可再生能源收集技术的快速发展,对可在电网规模部署的长时储能技术有巨大需求。在这方面,多硫化物-空气氧化还原液流电池展现出巨大潜力。然而,多硫化物的交叉渗透是一个重大挑战。在此,我们报道了一种稳定且具有成本效益的碱性混合多硫化物-空气氧化还原液流电池,其中双膜结构的液流电池设计减轻了硫的交叉渗透问题。此外,将锰/碳催化空气电极与硫化泡沫镍多硫化物电极相结合,该氧化还原液流电池在50%充电状态和55°C时实现了5.8 mW/cm²的最大功率密度。在1 mA/cm²下经过80个循环还实现了40%的平均往返能量效率。基于所报道的性能,技术经济分析表明,这种类型的碱性多硫化物-空气氧化还原液流电池已分别实现了约2.5美元/千瓦时和1600美元/千瓦的能源和功率成本,且有进一步降低的巨大空间。

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