Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published January 15, 2025 | Published
Journal Article Open

Sacrificial MOF-derived MnNi hydroxide for high energy storage supercapacitor electrodes via DFT-based quantum capacitance study

  • 1. ROR icon Iran University of Science and Technology
  • 2. ROR icon Western University
  • 3. ROR icon Sharif University of Technology
  • 4. ROR icon California Institute of Technology

Abstract

Electrochemical energy storage plays a critical role in the transition to clean energy. With the growing demand for efficient and sustainable energy solutions, supercapacitors have gained significant attention due to their high specific capacitance, rapid charge/discharge capabilities, long lifespan, safe operation across various temperatures, and minimal maintenance needs. This study introduces a novel approach for the synthesis of high-performance supercapacitor electrodes by using MnNi-MOF-74 as a precursor. Bimetallic Mn(OH)₂/Ni(OH)₂ hydroxides (MnNi-x, where x = 2, 6, 12) with tailored morphologies were successfully fabricated by treating MnNi-MOF-74 anchored on nickel foam with different concentrations of KOH. Among the various synthesized samples, MnNi-6 exhibited the best performance, with a remarkable specific capacitance of 4031.51 mF cm⁻2 at 2 mA cm⁻2, attributed to its high surface area of 186 m2/g, optimized particle size, and abundant micropores. Furthermore, MnNi-6 demonstrated exceptional thermal stability, positioning it as a promising candidate for high-temperature supercapacitors. It also exhibited excellent cycling stability, retaining 86.34 % of its capacity after 10,000 cycles at 10 mA cm⁻2, highlighting its remarkable durability. Density functional theory (DFT) calculations were conducted to explore the quantum capacitance of the bimetallic hydroxide. The DFT results revealed electron density near the Fermi level, which directly contributes to the high quantum capacitance of Mn(OH)₂/Ni(OH)₂ with a Mn:Ni molar ratio of 3:1. This work underscores the potential of MOF-derived materials as a promising route for the development of high-performance supercapacitor electrodes, paving the way for future advances in electrochemical energy storage technologies.

Copyright and License

© 2024 Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license
(http://creativecommons.org/licenses/by-nc-nd/4.0/).

Acknowledgement

Our gratitude goes out to the Iran University of Science and Technology (IUST) for providing us with some facilities and materials. In this study, no specific grants were received from public, commercial, or non-profit funding agencies.

Contributions

SElahe Torabi: Writing – review & editing, Writing – original draft, Visualization, Validation, Software, Resources, Project administration, Methodology, Investigation, Funding acquisition, Formal analysis, Data curation, Conceptualization. Amir Kazemi: Writing – review & editing, Writing – original draft, Visualization, Validation, Software, Resources, Project administration, Methodology, Investigation, Funding acquisition, Formal analysis, Data curation, Conceptualization. Mohsen Tamtaji: Writing – review & editing, Writing – original draft, Software, Investigation, Funding acquisition, Formal analysis, Data curation, Conceptualization. Faranak Manteghi: Writing – review & editing, Writing – original draft, Visualization, Validation, Supervision, Software, Resources, Project administration, Methodology, Investigation, Funding acquisition, Formal analysis, Data curation, Conceptualization. Sohrab Rohani: Investigation, Funding acquisition, Formal analysis, Data curation, Conceptualization. William A. Goddard: Investigation, Funding acquisition, Formal analysis, Data curation, Conceptualization.

Supplemental Material

Supplementary data (DOCX)

Files

PIIS2405844024172921.pdf
Files (15.8 MB)
Name Size Download all
md5:2432d9c375fed3da35e7b3e19088c38c
8.3 MB Preview Download
md5:cd9c6f6a2b1d8de6b03e2337a9da661f
7.5 MB Download

Additional details

Created:
January 2, 2025
Modified:
January 2, 2025