Keqi Chen , Zengmou Li , Keyu Zhang , Dingfang Cui , Rui Yan , Minghao Ye , Bin Yang , Yaochun Yao
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It is proved that the rGO carrier improves the interparticle conductivity, electrochemical activity and structure stability of the iron (II) oxalate particles, ensuring the stability of Li || FeC<sub>2</sub>O<sub>4</sub>/rGO battery at a rapid charging rate of 20C (8 A g<sup>−1</sup>) for more than 500 cycles (with the special capacity of 713 mAh g<sup>−1</sup>). Compared with FeC<sub>2</sub>O<sub>4</sub> electrode, owning to high reactivity of rGO and continuously activating on the nanoscale Fe metal generated at ∼0.75 V, FeC<sub>2</sub>O<sub>4</sub>/rGO shows higher electrochemical activity of conversion reaction in the first 50 cycles and better reversibility in the rate charge–discharge test (the capacity rapidly increased to 1158.8 mAh g<sup>−1</sup> after 20C cycles). This work reveals how the structural design of conducting and supporting the carrier can achieve fast charging for iron (II) oxalate lithium-ion batteries.</p></div>","PeriodicalId":304,"journal":{"name":"Electrochemistry Communications","volume":"166 ","pages":"Article 107791"},"PeriodicalIF":4.7000,"publicationDate":"2024-07-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S1388248124001346/pdfft?md5=927af48ce748b51866f302ce763ebc80&pid=1-s2.0-S1388248124001346-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Improving rate performance of FeC2O4/rGO composites on lithium storage via single-polymerization‐induced electrostatic self‐assembly\",\"authors\":\"Keqi Chen , Zengmou Li , Keyu Zhang , Dingfang Cui , Rui Yan , Minghao Ye , Bin Yang , Yaochun Yao\",\"doi\":\"10.1016/j.elecom.2024.107791\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>Based on the wide interlayer distance for ions diffusion, iron (II) oxalate exhibits excellent lithium storage ability. However, the local deposition of metallic nanoparticles of Fe<sup>0</sup> leads to low electrochemical reactivity, which hinders the actual application of FeC<sub>2</sub>O<sub>4</sub> in large current regions (>5C). To solve this problem, a strong cationic polymeric electrolyte, polyelectrolyte diallyl dimethyl ammonium (PDDA), was introduced to construct a [FeC<sub>2</sub>O<sub>4</sub>(PDDA)]<sup>+</sup> ligand. By single-polymerization‐induced electrostatic self-assembly, the [FeC<sub>2</sub>O<sub>4</sub>(PDDA)]<sup>+</sup> ligand was combined with the surface-charged rGO to produce a FeC<sub>2</sub>O<sub>4</sub>/rGO material. 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引用次数: 0
摘要
由于离子扩散的层间距离较宽,草酸铁(II)具有出色的锂存储能力。然而,金属纳米铁颗粒的局部沉积导致电化学反应活性较低,从而阻碍了 FeCO 在大电流区域(>5C)的实际应用。为了解决这个问题,我们引入了一种强阳离子聚合物电解质--聚电解质二烯丙基二甲基铵(PDDA),构建了一种[FeCO(PDDA)]配体。通过单聚合诱导的静电自组装,[FeCO(PDDA)] 配体与表面带电的 rGO 结合生成了 FeCO/rGO 材料。实验证明,rGO 载体提高了草酸铁(II)颗粒的颗粒间导电性、电化学活性和结构稳定性,确保了锂离子电池在 20C 快速充电速率下(8 A g)500 次以上循环(特殊容量为 713 mAh g)的稳定性。与 FeCO 电极相比,由于 rGO 的高反应活性和在∼0.75 V 时产生的纳米级铁金属上的持续活化,FeCO/rGO 在前 50 个循环中表现出更高的转化反应电化学活性,并且在速率充放电测试中表现出更好的可逆性(20C 循环后容量迅速增至 1158.8 mAh g)。这项工作揭示了导电和支撑载体的结构设计如何实现草酸铁(II)锂离子电池的快速充电。
Improving rate performance of FeC2O4/rGO composites on lithium storage via single-polymerization‐induced electrostatic self‐assembly
Based on the wide interlayer distance for ions diffusion, iron (II) oxalate exhibits excellent lithium storage ability. However, the local deposition of metallic nanoparticles of Fe0 leads to low electrochemical reactivity, which hinders the actual application of FeC2O4 in large current regions (>5C). To solve this problem, a strong cationic polymeric electrolyte, polyelectrolyte diallyl dimethyl ammonium (PDDA), was introduced to construct a [FeC2O4(PDDA)]+ ligand. By single-polymerization‐induced electrostatic self-assembly, the [FeC2O4(PDDA)]+ ligand was combined with the surface-charged rGO to produce a FeC2O4/rGO material. It is proved that the rGO carrier improves the interparticle conductivity, electrochemical activity and structure stability of the iron (II) oxalate particles, ensuring the stability of Li || FeC2O4/rGO battery at a rapid charging rate of 20C (8 A g−1) for more than 500 cycles (with the special capacity of 713 mAh g−1). Compared with FeC2O4 electrode, owning to high reactivity of rGO and continuously activating on the nanoscale Fe metal generated at ∼0.75 V, FeC2O4/rGO shows higher electrochemical activity of conversion reaction in the first 50 cycles and better reversibility in the rate charge–discharge test (the capacity rapidly increased to 1158.8 mAh g−1 after 20C cycles). This work reveals how the structural design of conducting and supporting the carrier can achieve fast charging for iron (II) oxalate lithium-ion batteries.
期刊介绍:
Electrochemistry Communications is an open access journal providing fast dissemination of short communications, full communications and mini reviews covering the whole field of electrochemistry which merit urgent publication. Short communications are limited to a maximum of 20,000 characters (including spaces) while full communications and mini reviews are limited to 25,000 characters (including spaces). Supplementary information is permitted for full communications and mini reviews but not for short communications. We aim to be the fastest journal in electrochemistry for these types of papers.