Fluorinated porous frameworks enable robust anodeless sodium metal batteries

Rong Zhuang, Xiuhai Zhang, Changzhen Qu, Xiaosa Xu, Jiaying Yang, Qian Ye, Zhe Liu, Stefan Kaskel, Fei Xu, Hongqiang Wang

Research output: Contribution to journalArticlepeer-review

72 Scopus citations

Abstract

Sodium metal batteries hold great promise for energy-dense and low-cost energy storage technology but are severely impeded by catastrophic dendrite issue. State-of-the-art strategies including sodiophilic seeding/ hosting interphase design manifest great success on dendrite suppression, while neglecting unavoidable interphase-depleted Na+ before plating, which poses excessive Na use, sacrificed output voltage and ultimately reduced energy density. We here demonstrate that elaborate-designed fluorinated porous framework could simultaneously realize superior sodiophilicity yet negligible interphase-consumed Na+ for dendrite-free and durable Na batteries. As elucidated by physicochemical and theoretical characterizations, well-defined fluorinated edges on porous channels are responsible for both high affinities ensuring uniform deposition and low reactivity rendering superior Na+ utilization for plating. Accordingly, synergistic performance enhancement is achieved with stable 400 cycles and superior plateau to sloping capacity ratio in anode-free batteries. Proof-of-concept pouch cells deliver an energy density of 325 Watt-hours per kilogram and robust 300 cycles under anode-less condition, opening an avenue with great extendibility for the practical deployment of metal batteries.

Original languageEnglish
Article numbereadh8060
JournalScience Advances
Volume9
Issue number39
DOIs
StatePublished - 2023

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