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用于高性能混合电化学储能装置的BiO和MnO的不对称法拉第组装

Asymmetric faradaic assembly of BiO and MnO for a high-performance hybrid electrochemical energy storage device.

作者信息

Singh Saurabh, Sahoo Rakesh K, Shinde Nanasaheb M, Yun Je Moon, Mane Rajaram S, Chung Wonsub, Kim Kwang Ho

机构信息

Department of Materials Science and Engineering, Pusan National University Busan Republic of Korea

Global Frontier R&D Centre for Hybrid Interface Materials, Pusan National University Busan Republic of Korea.

出版信息

RSC Adv. 2019 Oct 9;9(55):32154-32164. doi: 10.1039/c9ra06331e. eCollection 2019 Oct 7.

Abstract

In the current study, we have explored the coupling of BiO negative electrode and MnO positive electrode materials as an asymmetric faradaic assembly for a high-performance hybrid electrochemical energy storage device (HEESD). Aiming at a low-cost device, both the electrodes have been synthesized by a simple, scalable, and cost-effective chemical synthesis method. After their requisite structure-morphological confirmation and correlation, these electrodes were separately examined for their electrochemical performance in a three-electrode configuration. The results obtained confirm that BiO and MnO exhibit 910 C g and 424 C g specific capacity, respectively, at 2 A g current density. Notably, the performance of both electrodes has been analyzed using Dunn's method to highlight the distinct nature of their faradaic properties. Afterwards, the asymmetric faradaic assembly of both electrodes, when assembled as a HEESD (MnO//BiO), delivered 411 C g specific capacity at 1 A g current density due to the inclusive contribution from the capacitive as well as the non-capacitive faradaic quotient. Consequently, the assembly offers an excellent energy density of 79 W h kg at a power density of 702 W kg, with a magnificent retention of energy density up to 21.1 W h kg at 14 339 W kg power density. Moreover, it demonstrates long-term cycling stability at 10 A g, retaining 85.2% of its initial energy density after 5000 cycles, which is significant in comparison with the previously reported literature. Additionally, to check the performance of the device in real time, two HEESDs were connected in series to power a light-emitting diode. The results obtained provide significant insight into hybrid coupling, where two different faradaic electrodes can be combined in a synergistic combination for a high-performance HEESD.

摘要

在本研究中,我们探索了将BiO负极和MnO正极材料耦合作为一种不对称法拉第组件,用于高性能混合电化学储能装置(HEESD)。针对低成本装置,通过简单、可扩展且经济高效的化学合成方法合成了这两种电极。在对其必要的结构形态进行确认和关联后,分别在三电极配置下对这些电极的电化学性能进行了研究。所得结果证实,在2 A g电流密度下,BiO和MnO的比容量分别为910 C g和424 C g。值得注意的是,使用邓恩方法分析了两种电极的性能,以突出其法拉第性质的独特性。之后,将这两种电极组装成HEESD(MnO//BiO)时,由于电容性和非电容性法拉第商的综合贡献,在1 A g电流密度下其比容量为411 C g。因此,该组件在功率密度为702 W kg时提供了79 W h kg的优异能量密度,在功率密度为14339 W kg时能量密度仍高达21.1 W h kg,保持率极高。此外,它在10 A g下表现出长期循环稳定性,在5000次循环后仍保留其初始能量密度的85.2%,与先前报道的文献相比具有显著优势。此外,为了实时检查该装置的性能,将两个HEESD串联起来为一个发光二极管供电。所得结果为混合耦合提供了重要见解,即两种不同的法拉第电极可以协同组合,用于高性能HEESD。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6671/9072848/5d37c24f2d37/c9ra06331e-f1.jpg

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