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

Author:

Seijas‐Da Silva Álvaro1,Oestreicher Víctor1,Huck‐Iriart Cristián23,Mizrahi Martín45,Hunt Diego6,Ferrari Valeria78,Abellán Gonzalo1ORCID

Affiliation:

1. Instituto de Ciencia Molecular (ICMol) Universitat de València Catedrático José Beltrán 2 46980 Paterna, Valencia Spain

2. Instituto de Tecnologías Emergentes y Ciencias Aplicadas (ITECA) UNSAM-CONICET Escuela de Ciencia y Tecnología Laboratorio de Cristalografía Aplicada Campus Miguelete 1650 San Martín, Buenos Aires Argentina

3. ALBA Synchrotron Light Source Carrer de la Llum 2–26, Cerdanyola del Vallès 08290 Barcelona Spain

4. Instituto de Investigaciones Fisicoquímicas Técnicas y Aplicadas (INIFTA) Departamento de Química Facultad de Ciencias Exactas Universidad Nacional de La Plata CCT La Plata- CONICET. Diagonal 113 y 64 1900 La Plata Argentina

5. Facultad de Ingeniería Universidad Nacional de La Plata Calle 1 esq. 47 1900 La Plata Argentina

6. Departamento de Física de la Materia Condensada GIyA CAC-CNEA Instituto de Nanociencia y Nanotecnología CNEA-CONICET- San Martin Buenos Aires Argentina

7. Instituto Sabato, UNSAM - CNEA Av. Gral Paz 1499 1650 San Martín, Buenos Aires Argentina

8. Instituto de Nanociencia y Nanotecnología CNEA - CONICET Departamento de Física de la Materia Condensada GIyA, CAC - CNEA Av. Gral Paz 1499 1650 San Martín, Buenos Aires Argentina

Abstract

AbstractAmong 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 represent promising phases as electrode materials for energy storage and conversion. However, these materials exhibit significant drawbacks, such as low conductivity and in‐plane packing that limits electrolyte diffusion. In this work, we explore the synthetic flexibility of α‐CoII hydroxides (Simonkolleite‐like structures) to overcome these limitations. We elucidate the growth mechanism of 3D flower‐like α‐CoII 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 layered double hydroxides. While α‐CoII LH phases inherently grow as 2D materials, the use of ethanol (EtOH) triggers the formation of 3D arrangements of these layers, which surpass their 2D analogues in capacitive behavior. Additionally, by taking advantage of their anion‐dependent bandgap, we demonstrate that substituting halides from chloride to iodide enhances capacitive behavior by more than 40 %. This finding confirms the role of halides in modulating the electronic properties of layered hydroxides, as supported by DFT+U calculations. Hence, this work provides fundamental insights into the 3D growth of α‐CoII LH and the critical influence of morphology and halide substitution on their electrochemical performance for energy storage applications.

Funder

European Research Council

Generalitat Valenciana

Publisher

Wiley

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