Wu Tianli, Qi Jing, Xu Mengyao, Zhou Dan, Xiao Zhubing
Henan Key Laboratory of Photovoltaic Materials, Henan University, Kaifeng, 475004, People's Republic of China.
ACS Nano. 2020 Nov 24;14(11):15011-15022. doi: 10.1021/acsnano.0c04933. Epub 2020 Oct 28.
The gravimetric, areal, and volumetric capacities pose important influences on market penetration for secondary batteries. Carbonaceous materials take a leading stand for the improvement of gravimetric and areal capacity in lithium-sulfur batteries; however, they exhibit some intrinsic deficiencies, including insufficient fixation on lithium polysulfides (LiPS) and low tap density, incurring poor volumetric performance and inferior cycling behavior. Here, we report a sulfur cathode based on highly conductive ZrB nanoflakes with only 2 wt % conductive carbon. The resultant closely packed ZrB-S electrode delivers a high areal capacity of 8.5 mAh cm and cell-level volumetric energy density of 533 Wh L with a high sulfur loading of 7.8 mg cm and an ultralow electrolyte dosage. With combined spectroscopic studies and theoretical calculation results, it was confirmed that an in-built Janus crystal facet self-mediation is on-site constructed by the exposed B and Zr atoms for an effective bonding and selective conversion on LiPS upon charge-discharge processes.
重量容量、面积容量和体积容量对二次电池的市场渗透率具有重要影响。在锂硫电池中,碳质材料在提高重量容量和面积容量方面占据主导地位;然而,它们存在一些固有缺陷,包括对多硫化锂(LiPS)的固定不足以及振实密度低,导致体积性能差和循环性能不佳。在此,我们报道了一种基于仅含2 wt%导电碳的高导电性ZrB纳米片的硫正极。由此得到的紧密堆积的ZrB-S电极在硫负载量为7.8 mg cm且电解质用量超低的情况下,实现了8.5 mAh cm的高面积容量和533 Wh L的电池级体积能量密度。结合光谱研究和理论计算结果,证实了通过暴露的B和Zr原子原位构建了一种内置的Janus晶面自调节机制,用于在充放电过程中对LiPS进行有效键合和选择性转化。