4.8 Article

Hybrid Protective Layer for Stable Sodium Metal Anodes at High Utilization

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 11, 期 41, 页码 37693-37700

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.9b12059

关键词

artificial hybrid protective layer; synergetic features; solid electrolyte interphase; Na metal anode; Cu current collector

资金

  1. National Natural Science Foundation of China (NSFC) [51772142]
  2. Shenzhen Science and Technology Innovation Committee [JCYJ20170412152528921, KQTD2016053019134356]
  3. Guangdong Innovative & Entrepreneurial Research Team Program [2016ZT06C279]
  4. Development and Reform Commission of Shenzhen Municipality (Novel Nanomaterial Discipline Construction Plan)
  5. SUSTech
  6. Shenzhen Key Laboratory of Solid State Batteries [ZDSYS201802081843465]
  7. Guangdong Provincial Key Laboratory of Energy Materials for Electric Power [2018B030322001]

向作者/读者索取更多资源

Na metal is a promising anode for Na batteries owing to its high theoretical capacity and low reduction potential. Nevertheless, an unstable and inhomogeneous solid electrolyte interphase originated from the instantaneous reactions between the Na metal anode and organic liquid electrolyte causes the intractable hurdles of dendrite growth and low Coulombic efficiency. Here, a sodium fluoride (NaF)-poly(vinylidene difluoride) (PVDF) inorganic-organic hybrid protective layer is constructed on a commercial Cu current collector via a simple blade-coating technique. A flexible PVDF matrix can endure volume change, maintaining the integrity of the anode/coating interface, while NaF particles provide improved Na diffusion conductivity and mechanical strength, suppressing the dendrite initiation and growth. Based on these synergetic effects, an excellent cycle life of more than similar to 2100 his realized at 1 mA cm(-2) at 50% depth of discharge (DOD), which outperforms 10-fold lifetime of the Cu current collector (similar to 170 h). Moreover, the Cu current collector with a NaF-PVDF protective layer also delivers good cycling stability at 5 mA cm(-2) and an ultrahigh DOD (80%). The rational design of the hybrid protective layer offers a new approach to realize stable Na metal batteries.

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