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研究溶剂对由Co(BF)合成新型氢氧化钴和氟化物络合物作为电池超级电容器混合体活性材料的影响。

Investigating solvent effects on synthesizing novel cobalt hydroxide and fluoride complex from Co(BF) as active materials of the battery supercapacitor hybrid.

作者信息

You Xiang-Yu, Lee Pin-Yan, Wang Su-Ching, Kongvarhodom Chutima, Saukani Muhammad, Yougbaré Sibidou, Chen Hung-Ming, Ho Kuo-Chuan, Wu Yung-Fu, Lin Lu-Yin

机构信息

Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, Taipei, Taiwan.

Department of Chemical Engineering, National Taiwan University, Taipei, Taiwan.

出版信息

J Colloid Interface Sci. 2025 Jan;677(Pt A):502-511. doi: 10.1016/j.jcis.2024.07.259. Epub 2024 Aug 5.

DOI:10.1016/j.jcis.2024.07.259
PMID:39106775
Abstract

Metal-organic framework (MOF) derivatives with tunable pore structure and improved conductivity are intensively designed as electroactive materials. Incorporating structure directing agents (SDA) is beneficial for designing MOF derivatives with excellent electrochemical performances. Ammonium fluoroborate has been reported as an effective SDA, coupled with cobalt salt and 2-methylimidazole, to synthesize zeolitic imidazolate framework-67 (ZIF-67) derivatives for charge storage. However, the synthetic environment for growing cobalt-based active materials is relatively complex. In this study, cobalt tetrafluoroborate (Co(BF)) is proposed as a novel cobalt precursor, supplementing cobalt ions and acting as the SDA in a single chemical, to synthesize the cobalt-based electroactive material of energy storage electrodes. Interactions between solvent molecules and solutes play significant roles on the morphology, composition, and electrochemical performance of active materials. Deionized water, methanol and ethanol are used as precursor solvents to understand their effects on material and electrochemical properties. The optimal electrode presents a specific capacitance of 608.3 F/g at 20 mV/s, attributed to the highest electrochemical surface area and evident compositions of cobalt fluoride and hydroxide. A battery supercapacitor hybrid achieves the maximum energy density of 45 Wh/kg at 429 W/kg. The C retention of 100% and Coulombic efficiency of 99% are achieved after 10,000 cycles.

摘要

具有可调孔隙结构和改善导电性的金属有机框架(MOF)衍生物被密集设计为电活性材料。引入结构导向剂(SDA)有利于设计具有优异电化学性能的MOF衍生物。据报道,氟硼酸铵作为一种有效的SDA,与钴盐和2-甲基咪唑结合,用于合成用于电荷存储的沸石咪唑框架-67(ZIF-67)衍生物。然而,生长钴基活性材料的合成环境相对复杂。在本研究中,提出四氟硼酸钴(Co(BF))作为一种新型钴前驱体,在单一化学品中补充钴离子并充当SDA,以合成储能电极的钴基电活性材料。溶剂分子与溶质之间的相互作用对活性材料的形态、组成和电化学性能起着重要作用。使用去离子水、甲醇和乙醇作为前驱体溶剂来了解它们对材料和电化学性质的影响。最佳电极在20mV/s时呈现608.3F/g的比电容,这归因于最高的电化学表面积以及氟化钴和氢氧化钴的明显组成。电池超级电容器混合体在429W/kg时实现了45Wh/kg的最大能量密度。在10000次循环后实现了100%的电容保持率和99%的库仑效率。

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