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Durable Zn-ion hybrid capacitors using 3D printed carbon composites
Rechargeable Zn-ion hybrid capacitors (ZHCs) have gained considerable attention towards future energy storage applications owing to their non-flammable nature, high abundance of raw materials and remarkable energy storage performance. However, the uncontrolled growth of dendrites, interfacial corros...
Autores principales: | , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9337798/ https://www.ncbi.nlm.nih.gov/pubmed/35978580 http://dx.doi.org/10.1039/d2ta03488c |
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author | Nagaraju, Goli Tagliaferri, Stefano Panagiotopoulos, Apostolos Och, Mauro Quintin-Baxendale, Rachael Mattevi, Cecilia |
author_facet | Nagaraju, Goli Tagliaferri, Stefano Panagiotopoulos, Apostolos Och, Mauro Quintin-Baxendale, Rachael Mattevi, Cecilia |
author_sort | Nagaraju, Goli |
collection | PubMed |
description | Rechargeable Zn-ion hybrid capacitors (ZHCs) have gained considerable attention towards future energy storage applications owing to their non-flammable nature, high abundance of raw materials and remarkable energy storage performance. However, the uncontrolled growth of dendrites, interfacial corrosion of Zn anodes and limited mass loading of cathode materials, hinders their practical applicability. Herein, we demonstrate ZHCs with enhanced capacity and durability using a synergistic combination of a hybrid-ion electrolyte and a high-mass loading three-dimensionally (3D) printed graphene–carbon nanotube (Gr–C) cathode. The hybrid electrolyte composed of NaCl and ZnSO(4), features higher ionic conductivity and lower pH compared with pristine ZnSO(4), which enable uniform plating/stripping of Zn(2+) ions on Zn anode, as demonstrated by in situ electrochemical and ex situ ToF-SIMs characterizations. Additionally, the multi-layered 3D Gr–C composite electrodes in ZHCs enable higher energy storage performance due to their porous architectures, high ion accessibility and dual-ion charge storage contributions. As a result, the 3D Gr–C//Zn cell unveiled a maximum capacity of 0.84 mA h cm(−2) at 3 mA cm(−2) with a high life cycle (78.7% at 20 mA cm(−2)) compared to the pristine electrolyte-based ZHCs (0.72 mA h cm(−2) and 14.8%). The rapid rate measurements that we propose along with benchmarked energy density (0.87 mW h cm(−2)) and power density (31.7 mW cm(−2)) of hybrid electrolyte-based 3D Gr–C//Zn, pave the way for the development of dendrite-free and highly durable 3D energy storage devices. |
format | Online Article Text |
id | pubmed-9337798 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-93377982022-08-15 Durable Zn-ion hybrid capacitors using 3D printed carbon composites Nagaraju, Goli Tagliaferri, Stefano Panagiotopoulos, Apostolos Och, Mauro Quintin-Baxendale, Rachael Mattevi, Cecilia J Mater Chem A Mater Chemistry Rechargeable Zn-ion hybrid capacitors (ZHCs) have gained considerable attention towards future energy storage applications owing to their non-flammable nature, high abundance of raw materials and remarkable energy storage performance. However, the uncontrolled growth of dendrites, interfacial corrosion of Zn anodes and limited mass loading of cathode materials, hinders their practical applicability. Herein, we demonstrate ZHCs with enhanced capacity and durability using a synergistic combination of a hybrid-ion electrolyte and a high-mass loading three-dimensionally (3D) printed graphene–carbon nanotube (Gr–C) cathode. The hybrid electrolyte composed of NaCl and ZnSO(4), features higher ionic conductivity and lower pH compared with pristine ZnSO(4), which enable uniform plating/stripping of Zn(2+) ions on Zn anode, as demonstrated by in situ electrochemical and ex situ ToF-SIMs characterizations. Additionally, the multi-layered 3D Gr–C composite electrodes in ZHCs enable higher energy storage performance due to their porous architectures, high ion accessibility and dual-ion charge storage contributions. As a result, the 3D Gr–C//Zn cell unveiled a maximum capacity of 0.84 mA h cm(−2) at 3 mA cm(−2) with a high life cycle (78.7% at 20 mA cm(−2)) compared to the pristine electrolyte-based ZHCs (0.72 mA h cm(−2) and 14.8%). The rapid rate measurements that we propose along with benchmarked energy density (0.87 mW h cm(−2)) and power density (31.7 mW cm(−2)) of hybrid electrolyte-based 3D Gr–C//Zn, pave the way for the development of dendrite-free and highly durable 3D energy storage devices. The Royal Society of Chemistry 2022-06-30 /pmc/articles/PMC9337798/ /pubmed/35978580 http://dx.doi.org/10.1039/d2ta03488c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Nagaraju, Goli Tagliaferri, Stefano Panagiotopoulos, Apostolos Och, Mauro Quintin-Baxendale, Rachael Mattevi, Cecilia Durable Zn-ion hybrid capacitors using 3D printed carbon composites |
title | Durable Zn-ion hybrid capacitors using 3D printed carbon composites |
title_full | Durable Zn-ion hybrid capacitors using 3D printed carbon composites |
title_fullStr | Durable Zn-ion hybrid capacitors using 3D printed carbon composites |
title_full_unstemmed | Durable Zn-ion hybrid capacitors using 3D printed carbon composites |
title_short | Durable Zn-ion hybrid capacitors using 3D printed carbon composites |
title_sort | durable zn-ion hybrid capacitors using 3d printed carbon composites |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9337798/ https://www.ncbi.nlm.nih.gov/pubmed/35978580 http://dx.doi.org/10.1039/d2ta03488c |
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