Enhancing the Supercapacitive Behaviour of Cobalt Layered Hydroxides by 3D Structuring and Halide Substitution

IF 5.1 4区 材料科学 Q2 ELECTROCHEMISTRY Batteries & Supercaps Pub Date : 2024-07-27 DOI:10.1002/batt.202400335
Álvaro Seijas Da Silva, Víctor Oestreicher, Cristián Huck-Iriart, Martín Mizrahi, Diego Hunt, Valeria Ferrari, Gonzalo Abellán
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Abstract

Among the two‐dimensional (2D) materials, layered hydroxides (LHs) stand out due to their chemical versatility, allowing the modulation of physicochemical properties on demand. Specifically, LHs based on earth‐abundant elements are promising phases as electrode materials for energy storage. However, these materials exhibit significant drawbacks, such as low conductivity and in‐plane packing that limits electrolyte diffusion. Here, we explored the synthetic flexibility of α‐Co hydroxides to overcome these limitations. We elucidated the growth mechanism of 3D flower‐like α‐Co hydroxyhalides by using in‐situ SAXS experiments combined with thorough physicochemical, structural, and electrochemical characterization. Furthermore, we compared these findings with the most commonly employed Co‐based LHs: β‐Co(OH)2 and CoAl LDHs. While α‐Co LH phases inherently grow as 2D materials, ethanol triggers the formation of 3D‐arrangements of these layers, surpassing their 2D analogues in capacitive behavior. Additionally, by taking advantage of their anion‐dependent bandgap, we demonstrated that substituting halides from chloride to iodide enhances capacitive behavior by > 40%. This finding confirms the role of halides in modulating the electronic properties of LH, as supported by DFT+U calculations. Hence, this work provides fundamental insights into the 3D growth of α‐Co LH and the critical influence of morphology and halide substitution on their electrochemical performance.
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通过三维结构和卤化物替代增强钴层氢氧化物的超级电容行为
在二维(2D)材料中,层状氢氧化物(LHs)因其化学多功能性而脱颖而出,可根据需要调节物理化学特性。具体来说,基于地球富集元素的层状氢氧化物是很有前途的储能电极材料。然而,这些材料表现出明显的缺点,如低导电性和限制电解质扩散的面内堆积。在此,我们探索了 α-Co 氢氧化物的合成灵活性,以克服这些限制。我们利用原位 SAXS 实验,结合全面的物理化学、结构和电化学表征,阐明了三维花状 α-Co 氢氧化物的生长机制。此外,我们还将这些发现与最常用的 Co 基 LHs:β-Co(OH)2 和 CoAl LDHs 进行了比较。虽然α-Co LH 相本质上是作为二维材料生长的,但乙醇会引发这些层形成三维排列,从而在电容行为上超越其二维类似物。此外,通过利用其阴离子带隙,我们证明了将卤化物从氯化物替换为碘化物可将电容行为提高 40%。这一发现证实了卤化物在调节 LH 电子特性中的作用,DFT+U 计算也证明了这一点。因此,这项工作为α-Co LH的三维生长以及形貌和卤化物取代对其电化学性能的关键影响提供了基本见解。
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来源期刊
CiteScore
8.60
自引率
5.30%
发文量
223
期刊介绍: Electrochemical energy storage devices play a transformative role in our societies. They have allowed the emergence of portable electronics devices, have triggered the resurgence of electric transportation and constitute key components in smart power grids. Batteries & Supercaps publishes international high-impact experimental and theoretical research on the fundamentals and applications of electrochemical energy storage. We support the scientific community to advance energy efficiency and sustainability.
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