Li Xiaoxia, Guo Tianqi, Shang Yang, Zheng Tian, Jia Binbin, Niu Xiaogang, Zhu Yujie, Wang Zhongchang
School of Chemistry, Beihang University, Beijing, 100191, P. R. China.
International Iberian Nanotechnology Laboratory (INL), Braga, 4715-330, Portugal.
Adv Mater. 2024 Apr;36(15):e2310428. doi: 10.1002/adma.202310428. Epub 2024 Jan 22.
Metal hexacyanoferrates (HCFs) are viewed as promising cathode materials for potassium-ion batteries (PIBs) because of their high theoretical capacities and redox potentials. However, the development of an HCF cathode with high cycling stability and voltage retention is still impeded by the unavoidable Fe(CN) vacancies (V) and HO in the materials. Here, a repair method is proposed that significantly reduces the V content in potassium manganese hexacyanoferrate (KMHCF) enabled by the reducibility of sodium citrate and removal of ligand HO at high temperature (KMHCF-H). The KMHCF-H obtained at 90 °C contains only 2% V, and the V is concentrated in the lattice interior. Such an integrated Fe-CN-Mn surface structure of the KMHCF-H cathode with repaired surface V allows preferential decomposition of potassium bis(fluorosulfonyl)imide (KFSI) in the electrolyte, which constitutes a dense anion-dominated cathode electrolyte interphase (CEI) , inhibiting effectively Mn dissolution into the electrolyte. Consequently, the KMHCF-H cathode exhibits excellent cycling performance for both half-cell (95.2 % at 0.2 Ag after 2000 cycles) and full-cell (99.4 % at 0.1 Ag after 200 cycles). This thermal repair method enables scalable preparation of KMHCF with a low content of vacancies, holding substantial promise for practical applications of PIBs.
金属六氰合铁酸盐(HCFs)因其高理论容量和氧化还原电位,被视为钾离子电池(PIBs)颇具前景的阴极材料。然而,材料中不可避免的Fe(CN)空位(V)和HO仍阻碍着具有高循环稳定性和电压保持率的HCF阴极的发展。在此,我们提出一种修复方法,通过柠檬酸钠的还原性和高温下去除配体HO,显著降低了六氰合铁酸锰钾(KMHCF)中的V含量(KMHCF-H)。在90℃下获得的KMHCF-H仅含2%的V,且V集中在晶格内部。这种具有修复表面V的KMHCF-H阴极的Fe-CN-Mn表面结构一体化,使得电解质中的双(氟磺酰)亚胺钾(KFSI)优先分解,形成致密的阴离子主导的阴极电解质界面(CEI),有效抑制Mn溶解到电解质中。因此,KMHCF-H阴极在半电池(2000次循环后在0.2 Ag下为95.2%)和全电池(200次循环后在0.1 Ag下为99.4%)中均表现出优异的循环性能。这种热修复方法能够可扩展地制备低空位含量的KMHCF,为PIBs的实际应用带来了巨大希望。