Metal organic framework derived NiCo layered double hydroxide anode aggregated with biomass derived reduced graphene oxide cathode: A hybrid device configuration for supercapattery applications
Metal-organic frameworks (MOFs), due to its exceptional characteristics like high specific surface area and design diversity, serve as an outstanding sacrificial template in forming layered double hydroxides (LDHs) for highly efficient electrodes in supercapattery devices. In this work, we have prep...
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Published in | Journal of energy storage Vol. 73; p. 109264 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
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Elsevier Ltd
20.12.2023
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Abstract | Metal-organic frameworks (MOFs), due to its exceptional characteristics like high specific surface area and design diversity, serve as an outstanding sacrificial template in forming layered double hydroxides (LDHs) for highly efficient electrodes in supercapattery devices. In this work, we have prepared bimetallic layered Nickel Cobalt LDH via in-situ etching of Co-ZIF, in different Nickel concentrations directly on Ni foam that enhances the interfacial contact between substrate and the material. The optimised NiCo LDH-2 sample exhibited remarkable electrochemical behaviour with fast electrolyte ion diffusion kinetics ideal for supercapattery device and delivered a high specific capacitance of 2567 Fg−1 at 1 Ag−1. Further, the supercapattery device assembled with Ni-Co LDH as anode and rGO derived from a sustainable source as cathode demonstrated an energy density of 21 Whkg−1, power density of 0.307 kWkg−1 and good cyclic stability with capacitance retention of 88.89 % along with coulombic efficiency of 90.58 % over 1500 cycles. This work proposes an effective approach for designing layered NiCo-LDH that can be further extended to the synthesis of other transition metal-derived LDH for supercapattery devices.
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•Co-ZIF is converted into NiCo LDH using in situ etching method directly on Ni foam and used as anode in supercapattery device.•Eco-friendly approach was used to synthesize rGO from coffee grounds using microwave pyrolysis technique and used as cathode for the hybrid device.•The supercapattery device delivers high specific capacitance, energy and power density.•The results portrayed by the fabricated device offer great potential in efficient energy storage applications. |
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AbstractList | Metal-organic frameworks (MOFs), due to its exceptional characteristics like high specific surface area and design diversity, serve as an outstanding sacrificial template in forming layered double hydroxides (LDHs) for highly efficient electrodes in supercapattery devices. In this work, we have prepared bimetallic layered Nickel Cobalt LDH via in-situ etching of Co-ZIF, in different Nickel concentrations directly on Ni foam that enhances the interfacial contact between substrate and the material. The optimised NiCo LDH-2 sample exhibited remarkable electrochemical behaviour with fast electrolyte ion diffusion kinetics ideal for supercapattery device and delivered a high specific capacitance of 2567 Fg−1 at 1 Ag−1. Further, the supercapattery device assembled with Ni-Co LDH as anode and rGO derived from a sustainable source as cathode demonstrated an energy density of 21 Whkg−1, power density of 0.307 kWkg−1 and good cyclic stability with capacitance retention of 88.89 % along with coulombic efficiency of 90.58 % over 1500 cycles. This work proposes an effective approach for designing layered NiCo-LDH that can be further extended to the synthesis of other transition metal-derived LDH for supercapattery devices.
[Display omitted]
•Co-ZIF is converted into NiCo LDH using in situ etching method directly on Ni foam and used as anode in supercapattery device.•Eco-friendly approach was used to synthesize rGO from coffee grounds using microwave pyrolysis technique and used as cathode for the hybrid device.•The supercapattery device delivers high specific capacitance, energy and power density.•The results portrayed by the fabricated device offer great potential in efficient energy storage applications. |
ArticleNumber | 109264 |
Author | Jacob, Mohan V. Ravi Kant, Chhaya Prajapati, Megha Allende, Scarlett |
Author_xml | – sequence: 1 givenname: Megha surname: Prajapati fullname: Prajapati, Megha organization: Department of Applied Sciences and Humanities, Indira Gandhi Delhi Technical University for Women, Delhi 110006, India – sequence: 2 givenname: Chhaya surname: Ravi Kant fullname: Ravi Kant, Chhaya email: chhayaravikant@igdtuw.ac.in organization: Department of Applied Sciences and Humanities, Indira Gandhi Delhi Technical University for Women, Delhi 110006, India – sequence: 3 givenname: Scarlett surname: Allende fullname: Allende, Scarlett organization: Electronics Materials Lab, College of Science and Engineering, James Cook University, Townsville, QLD 4811, Australia – sequence: 4 givenname: Mohan V. surname: Jacob fullname: Jacob, Mohan V. organization: Electronics Materials Lab, College of Science and Engineering, James Cook University, Townsville, QLD 4811, Australia |
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CitedBy_id | crossref_primary_10_1007_s11664_024_11048_2 crossref_primary_10_1016_j_jelechem_2024_118242 crossref_primary_10_1016_j_electacta_2024_144419 crossref_primary_10_1002_adsu_202400109 crossref_primary_10_1016_j_est_2024_110635 |
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