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揭示MnCo LDH修饰的MnCoS纳米复合材料作为不对称超级电容器和全水分解高效双功能电极的协同效应。

Unveiling the Synergistic Effect of MnCo LDH Adorned MnCoS Nanocomposite as Efficient Bifunctional Electrode for Asymmetric Supercapacitor and Overall Water Splitting.

作者信息

Raja A Sheron, Sasikumar Ragu, Chen Shen-Ming, Kim Byungki

机构信息

Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, No. 1, Section 3, Chung-Hsiao East Road, Taipei, 106, Taiwan, ROC.

School of Mechatronics Engineering, Advanced Technology Research Center, Korea University of Technology and Education, Cheonan, Chungnam, 31253, Republic of Korea.

出版信息

Small. 2025 Jul;21(29):e2411728. doi: 10.1002/smll.202411728. Epub 2025 May 23.

Abstract

Metal-based LDHs incorporated with TMDs, exhibiting excellent synergistic effects, have attracted significant interest from researchers for energy production and storage applications due to their outstanding properties. In the present research, manganese cobalt sulfide incorporated into a manganese cobalt layered double hydroxide (MnCoS@MnCo LDH) composite has been developed for supercapacitors and overall water splitting. At a current density of 1 mA cm, the MnCoS@MnCo LDH-NF exhibits the highest specific capacitance (475.8 F g) compared to other electrodes. The MnCoS@MnCo LDH//AC ASCD demonstrates an energy density of 5.27 Wh kg and a power density of 851.06 W kg, along with high cyclic stability, retaining 93.75% of its capacitance and 98.36% Coulombic efficiency. Furthermore, MnCoS@MnCo LDH-NF shows lower overpotentials (ƞ) and Tafel slopes for HER (-163.9 mV and 96.2 mV dec) and OER (-150.68 mV and 50.95 mV dec) compared to control electrodes. The fabricated water-splitting cell (MnCoS@MnCo LDH) efficiently generates both oxygen (O) and hydrogen (H) bubbles at a low voltage of 1.38 V. These results demonstrate that the MnCoS@MnCo LDH composite is an excellent candidate for both energy storage (supercapacitor) and green energy production (water splitting), showing potential for future renewable energy systems.

摘要

与过渡金属二硫族化合物结合的金属基层状双氢氧化物展现出优异的协同效应,由于其出色的性能,在能源生产和存储应用方面引起了研究人员的极大兴趣。在本研究中,已开发出一种掺入锰钴层状双氢氧化物(MnCoS@MnCo LDH)复合材料中的锰钴硫化物,用于超级电容器和全水解。在1 mA cm的电流密度下,与其他电极相比,MnCoS@MnCo LDH-NF展现出最高的比电容(475.8 F g)。MnCoS@MnCo LDH//AC ASCD的能量密度为5.27 Wh kg,功率密度为851.06 W kg,同时具有高循环稳定性,保留了其93.75%的电容和98.36%的库仑效率。此外,与对照电极相比,MnCoS@MnCo LDH-NF在析氢反应(HER)(-163.9 mV和96.2 mV dec)和析氧反应(OER)(-150.68 mV和50.95 mV dec)中表现出更低的过电位(ƞ)和塔菲尔斜率。制备的水解电池(MnCoS@MnCo LDH)在1.38 V的低电压下能高效产生氧气(O)和氢气(H)气泡。这些结果表明,MnCoS@MnCo LDH复合材料是储能(超级电容器)和绿色能源生产(水解)的优秀候选材料,并在未来可再生能源系统中展现出潜力。

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