Al-Tahan Mohammed A, Miao Baoji, Xu Sankui, Cao Yange, Hou Mengyao, Shatat Mohamed R, Asad Muhammad, Luo Yanwei, Shrshr Aml E, Zhang Jianmin
School of Materials Science and Engineering, Henan University of Technology, Zhengzhou 450001, China; Henan International Joint Laboratory of Nano-Photoelectric Magnetic Material, Henan University of Technology, Zhengzhou 450001, China; Chemistry Department, Faculty of Science, Al-Azhar University, Assiut 71524, Egypt.
School of Materials Science and Engineering, Henan University of Technology, Zhengzhou 450001, China; Henan International Joint Laboratory of Nano-Photoelectric Magnetic Material, Henan University of Technology, Zhengzhou 450001, China.
J Colloid Interface Sci. 2024 Jan 15;654(Pt A):753-763. doi: 10.1016/j.jcis.2023.10.081. Epub 2023 Oct 18.
The specific energies and energy densities of lithium-sulfur (Li-S) batteries are influenced by various cell parameters, including the sulfur loading, the sulfur weight percentage in the cathode, and the electrolyte/sulfur ratio. An InS/BiS@rGO heterostructure was obtained by growing indium sulfide nanoparticles on the surface of bismuth sulfide nanoflowers in a graphene oxide (GO) solution via a one-step solvothermal approach. This structure was introduced as a modified separator/dual-layer sulfur cathode for Li-S batteries. The BiS/InS heterointerfaces act as active sites to speed up interfacial electron transfer, along with the entrapment, diffusion, and transformation of lithium polysulfides. A Li-S cell containing a dual-layer sulfur cathode (thin layer of InS/BiS@rGO sandwiched between two thick layers of sulfur) and coupled with an InS/BiS@rGO-coated separator suppressed the polysulfide shuttle effect. The cell based on the dual-layer sulfur cathode technology and operated at a current rate of 0.3C achieved a high capacity (7.1 mAh cm) after the 200th cycle, giving an electrolyte/sulfur ratio (10 µL mg) under a high sulfur loading (11.53 mg cm). These results demonstrate the unique nature of the dual-layer sulfur cathode technique, which can yield high energy density Li-S batteries with high sulfur loadings and low electrolyte/sulfur ratios.
锂硫(Li-S)电池的比能量和能量密度受多种电池参数影响,包括硫负载量、阴极中硫的重量百分比以及电解质/硫比。通过一步溶剂热法在氧化石墨烯(GO)溶液中硫化铋纳米花表面生长硫化铟纳米颗粒,获得了InS/BiS@rGO异质结构。该结构被用作锂硫电池的改性隔膜/双层硫阴极引入。BiS/InS异质界面作为活性位点,加速界面电子转移,同时促进多硫化锂的捕获、扩散和转化。含有双层硫阴极(InS/BiS@rGO薄层夹在两层厚硫层之间)并与InS/BiS@rGO涂层隔膜耦合的锂硫电池抑制了多硫化物穿梭效应。基于双层硫阴极技术且以0.3C电流速率运行的电池在第200次循环后实现了高容量(7.1 mAh cm),在高硫负载(11.53 mg cm)下给出了电解质/硫比(10 µL mg)。这些结果证明了双层硫阴极技术的独特性质,其能够生产具有高硫负载和低电解质/硫比的高能量密度锂硫电池。