Residential College | false |
Status | 已發表Published |
Advanced Zinc–Iodine Batteries with Ultrahigh Capacity and Superior Rate Performance Based on Reduced Graphene Oxide and Water-in-Salt Electrolyte | |
Ji, Yu1; Xie, Junpeng1,2; Shen, Zhaoxi1; Liu, Yu1; Wen, Zhaorui1; Luo, Lei1; Hong, Guo2 | |
2023-03-02 | |
Source Publication | Advanced Functional Materials |
ISSN | 1616-301X |
Volume | 33Issue:10Pages:2210043 |
Abstract | Aqueous rechargeable zinc–iodine batteries have received increasing attention in the field of portable electronics due to their high safety, low-cost, and great electrochemical performance. However, the insulated nature of iodine and the unrestricted shuttle effect of soluble triiodide seriously limit the lifespan and Coulombic efficiency (CE) of the batteries. Herein, a high-performance zinc–iodine energy storage system based on the hydrothermal reduced graphene oxide (rGO) and a high concentration zinc chloride water-in-salt electrolyte are promoted. The 3D microporous structures and outstanding electrical conductivity of rGO make it an excellent host for iodine, while the water-in-salt electrolyte effectively suppresses the shuttle effect of triiodide and improves the CE of the system. As a result, an ultra-high I mass loading of 25.33 mg cm (loading ratio of 71.69 wt.%) is realized during the continuous charging/discharging process. The batteries deliver a high capacity of 6.5 mAh cm at 2 mA cm with a much-improved CE of 95% and a prominent rate performance with capacity of 1 mAh cm at 80 mA cm. A stable long-term cycling performance is also achieved with capacity retention of 2 mAh cm after 2000 cycles at 50 mA cm−2. |
Keyword | Reduced Graphene Oxide Water In Salt Electrolytes Zinc–iodine Batteries |
DOI | 10.1002/adfm.202210043 |
URL | View the original |
Indexed By | SCIE |
Language | 英語English |
WOS Research Area | Chemistry ; Science & Technology - Other Topics ; Materials Science ; Physics |
WOS Subject | Chemistry, Multidisciplinary ; Chemistry, Physical ; Nanoscience & Nanotechnology ; Materials Science, Multidisciplinary ; Physics, Applied ; Physics, Condensed Matter |
WOS ID | WOS:000913732500001 |
Publisher | WILEY-V C H VERLAG GMBH, POSTFACH 101161, 69451 WEINHEIM, GERMANY |
Scopus ID | 2-s2.0-85146351309 |
Fulltext Access | |
Citation statistics | |
Document Type | Journal article |
Collection | INSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING |
Corresponding Author | Hong, Guo |
Affiliation | 1.Institute of Applied Physics and Materials Engineering, University of Macau, Avenida da Universidade, Taipa, SAR, 999078, China 2.Department of Materials Science and Engineering & Center of Super-Diamond and Advanced Films, College of Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong SAR 999077, China |
First Author Affilication | INSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING |
Recommended Citation GB/T 7714 | Ji, Yu,Xie, Junpeng,Shen, Zhaoxi,et al. Advanced Zinc–Iodine Batteries with Ultrahigh Capacity and Superior Rate Performance Based on Reduced Graphene Oxide and Water-in-Salt Electrolyte[J]. Advanced Functional Materials, 2023, 33(10), 2210043. |
APA | Ji, Yu., Xie, Junpeng., Shen, Zhaoxi., Liu, Yu., Wen, Zhaorui., Luo, Lei., & Hong, Guo (2023). Advanced Zinc–Iodine Batteries with Ultrahigh Capacity and Superior Rate Performance Based on Reduced Graphene Oxide and Water-in-Salt Electrolyte. Advanced Functional Materials, 33(10), 2210043. |
MLA | Ji, Yu,et al."Advanced Zinc–Iodine Batteries with Ultrahigh Capacity and Superior Rate Performance Based on Reduced Graphene Oxide and Water-in-Salt Electrolyte".Advanced Functional Materials 33.10(2023):2210043. |
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