posted on 2022-11-15, 08:29authored byXianhui Zhang, Peiyuan Gao, Zhaohui Wu, Mark H. Engelhard, Xia Cao, Hao Jia, Yaobin Xu, Haodong Liu, Chongming Wang, Jun Liu, Ji-Guang Zhang, Ping Liu, Wu Xu
Sulfurized polyacrylonitrile (SPAN) represents one of
the most
promising directions for high-energy-density lithium (Li)-sulfur batteries.
However, the practical application of Li||SPAN is currently limited
by the insufficient chemical/electrochemical stability of electrode/electrolyte
interphase (EEI). Here, a pinned EEI layer is designed for stabilizing
a SPAN cathode by regulating the EEI formation mechanism in an advanced
LiFSI/ether/fluorinated-ether electrolyte. Computational simulations
and experimental investigations reveal that, benefiting from the nonsolvating
nature, the fluorinated-ether can not only act as a protective shield
to prevent the Li polysulfides dissolution but also, more importantly,
endow a diffusion-controlled EEI formation process. It promotes the
formation of a uniform, protective, and conductive EEI layer pinning
into SPAN surface region, enabling the high loading Li||SPAN batteries
with superior cycling stability, wide temperature performance, and
high-rate capability. This design strategy opens an avenue for exploring
advanced electrolytes for Li||SPAN batteries and guides the interface
design for broad types of battery systems.