Jiancong Cheng, ChuTao Wang, Kun Wang, Kai Lan, Chen Li, Jingmin Fan, Ruming Yuan, Mingsen Zheng, Quanfeng Dong
{"title":"利用聚四氟乙烯和碳纳米管构建电子/离子导电增强型超高负载磷酸铁锂电极,用于制造高性能电池","authors":"Jiancong Cheng, ChuTao Wang, Kun Wang, Kai Lan, Chen Li, Jingmin Fan, Ruming Yuan, Mingsen Zheng, Quanfeng Dong","doi":"10.1002/aesr.202400148","DOIUrl":null,"url":null,"abstract":"<p>Thick electrodes represent an effective approach for augmenting energy density of batteries. However, their increased thickness invariably leads to longer electron and ion transport distance, limiting the utilization of active material and hindering practical application. Herein, an electron-conducting-enhanced and ion-conducting-enhanced strategy is presented for fabricating ultrahigh loading electrodes via constructing an interlaced 3D network. Carbon nanotubes (CNTs) serve as extended electron pathways. Different from the polyvinylidene fluoride binder which needs to be dissolved into molecules for preparing electrode, polytetrafluoroethylene (PTFE), however, exists as a separate phase inside the electrode, thus can become the extended pathways for electrolyte elongating due to its strong affinity to organic electrolyte. Note that based on the synergistic effect between CNT and PTFE, the latter can exhibit a form of long-distance extension fibers rather than agglomeration. Finally, a LiFePO<sub>4</sub> electrode with a record-high loading of 141 mg cm<sup>−2</sup> is successfully prepared. This electrode exhibits outstanding area capacity (20.7 mAh cm<sup>−2</sup> at 0.2 C) and cycling stability with impressive energy density of 224 Wh kg<sup>−1</sup> and 517 Wh L<sup>−1</sup> in a full cell (graphite anode). The findings present a novel strategy for achieving high energy density in lithium-ion batteries using existing material systems.</p>","PeriodicalId":29794,"journal":{"name":"Advanced Energy and Sustainability Research","volume":"5 11","pages":""},"PeriodicalIF":6.2000,"publicationDate":"2024-09-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1002/aesr.202400148","citationCount":"0","resultStr":"{\"title\":\"Constructing Electron/Ion Conductive-Enhanced Ultrahigh Loading LiFePO4 Electrodes Using Polytetrafluoroethylene and Carbon Nanotubes for High-Performance Batteries\",\"authors\":\"Jiancong Cheng, ChuTao Wang, Kun Wang, Kai Lan, Chen Li, Jingmin Fan, Ruming Yuan, Mingsen Zheng, Quanfeng Dong\",\"doi\":\"10.1002/aesr.202400148\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Thick electrodes represent an effective approach for augmenting energy density of batteries. However, their increased thickness invariably leads to longer electron and ion transport distance, limiting the utilization of active material and hindering practical application. Herein, an electron-conducting-enhanced and ion-conducting-enhanced strategy is presented for fabricating ultrahigh loading electrodes via constructing an interlaced 3D network. Carbon nanotubes (CNTs) serve as extended electron pathways. Different from the polyvinylidene fluoride binder which needs to be dissolved into molecules for preparing electrode, polytetrafluoroethylene (PTFE), however, exists as a separate phase inside the electrode, thus can become the extended pathways for electrolyte elongating due to its strong affinity to organic electrolyte. Note that based on the synergistic effect between CNT and PTFE, the latter can exhibit a form of long-distance extension fibers rather than agglomeration. Finally, a LiFePO<sub>4</sub> electrode with a record-high loading of 141 mg cm<sup>−2</sup> is successfully prepared. This electrode exhibits outstanding area capacity (20.7 mAh cm<sup>−2</sup> at 0.2 C) and cycling stability with impressive energy density of 224 Wh kg<sup>−1</sup> and 517 Wh L<sup>−1</sup> in a full cell (graphite anode). 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Constructing Electron/Ion Conductive-Enhanced Ultrahigh Loading LiFePO4 Electrodes Using Polytetrafluoroethylene and Carbon Nanotubes for High-Performance Batteries
Thick electrodes represent an effective approach for augmenting energy density of batteries. However, their increased thickness invariably leads to longer electron and ion transport distance, limiting the utilization of active material and hindering practical application. Herein, an electron-conducting-enhanced and ion-conducting-enhanced strategy is presented for fabricating ultrahigh loading electrodes via constructing an interlaced 3D network. Carbon nanotubes (CNTs) serve as extended electron pathways. Different from the polyvinylidene fluoride binder which needs to be dissolved into molecules for preparing electrode, polytetrafluoroethylene (PTFE), however, exists as a separate phase inside the electrode, thus can become the extended pathways for electrolyte elongating due to its strong affinity to organic electrolyte. Note that based on the synergistic effect between CNT and PTFE, the latter can exhibit a form of long-distance extension fibers rather than agglomeration. Finally, a LiFePO4 electrode with a record-high loading of 141 mg cm−2 is successfully prepared. This electrode exhibits outstanding area capacity (20.7 mAh cm−2 at 0.2 C) and cycling stability with impressive energy density of 224 Wh kg−1 and 517 Wh L−1 in a full cell (graphite anode). The findings present a novel strategy for achieving high energy density in lithium-ion batteries using existing material systems.
期刊介绍:
Advanced Energy and Sustainability Research is an open access academic journal that focuses on publishing high-quality peer-reviewed research articles in the areas of energy harvesting, conversion, storage, distribution, applications, ecology, climate change, water and environmental sciences, and related societal impacts. The journal provides readers with free access to influential scientific research that has undergone rigorous peer review, a common feature of all journals in the Advanced series. In addition to original research articles, the journal publishes opinion, editorial and review articles designed to meet the needs of a broad readership interested in energy and sustainability science and related fields.
In addition, Advanced Energy and Sustainability Research is indexed in several abstracting and indexing services, including:
CAS: Chemical Abstracts Service (ACS)
Directory of Open Access Journals (DOAJ)
Emerging Sources Citation Index (Clarivate Analytics)
INSPEC (IET)
Web of Science (Clarivate Analytics).