Han Fengfeng, Wang Zhilong, Jin Qi, Fan Liwen, Tao Kehao, Li Lu, Shi Lei, Lu Hui-Qing, Zhang Zhiguo, Li Jinjin, Zhang Xitian, Wu Lili
Key Laboratory for Photonic and Electronic Bandgap Materials, Ministry of Education, Harbin 150025, People's Republic of China.
Key Laboratory of Thin Film and Microfabrication Technology, Ministry of Education, Shanghai 200240, People's Republic of China.
ACS Nano. 2024 Jun 11;18(23):15167-15176. doi: 10.1021/acsnano.4c03031. Epub 2024 May 29.
High-entropy alloys (HEAs) have attracted considerable attention, owing to their exceptional characteristics and high configurational entropy. Recent findings demonstrated that incorporating HEAs into sulfur cathodes can alleviate the shuttling effect of lithium polysulfides (LiPSs) and accelerate their redox reactions. Herein, we synthesized nano PtCuFeCoNi HEAs on hollow carbons (HCs; denoted as HEA/HC) by a facile pyrolysis strategy. The HEA/HC nanostructures were further integrated into hypha carbon nanobelts (HCNBs). The solid-solution phase formed by the uniform mixture of the five metal elements, i.e., PtCuFeCoNi HEAs, gave rise to a strong interaction between neighboring atoms in different metals, resulting in their adsorption energy transformation across a wide, multipeak, and nearly continuous spectrum. Meanwhile, the HEAs exhibited numerous active sites on their surface, which is beneficial to catalyzing the cascade conversion of LiPSs. Combining density functional theory (DFT) calculations with detailed experimental investigations, the prepared HEAs bidirectionally catalyze the cascade reactions of LiPSs and boost their conversion reaction rates. S/HEA@HC/HCNB cathodes achieved a low 0.034% decay rate for 2000 cycles at 1.0 C. Notably, the S/HEA@HC/HCNB cathode delivered a high initial areal capacity of 10.2 mAh cm with a sulfur loading of 9 mg cm at 0.1 C. The assembled pouch cell exhibited a capacity of 1077.9 mAh g at the first discharge at 0.1 C. The capacity declined to 71.3% after 43 cycles at 0.1 C. In this work, we propose to utilize HEAs as catalysts not only to improve the cycling stability of lithium-sulfur batteries, but also to promote HEAs in energy storage applications.
高熵合金(HEAs)因其优异的特性和高组态熵而备受关注。最近的研究结果表明,将高熵合金引入硫阴极可以减轻多硫化锂(LiPSs)的穿梭效应并加速其氧化还原反应。在此,我们通过简便的热解策略在中空碳(HCs;表示为HEA/HC)上合成了纳米PtCuFeCoNi高熵合金。HEA/HC纳米结构进一步集成到菌丝状碳纳米带(HCNBs)中。由五种金属元素(即PtCuFeCoNi高熵合金)均匀混合形成的固溶体相,导致不同金属中相邻原子之间产生强烈相互作用,从而使其吸附能在宽范围、多峰且近乎连续的光谱上发生转变。同时,高熵合金在其表面展现出众多活性位点,这有利于催化多硫化锂的级联转化。结合密度泛函理论(DFT)计算与详细的实验研究,所制备的高熵合金双向催化多硫化锂的级联反应并提高其转化反应速率。S/HEA@HC/HCNB阴极在1.0 C下2000次循环的衰减率低至0.034%。值得注意的是,S/HEA@HC/HCNB阴极在0.1 C下硫负载量为9 mg cm时,初始面积容量高达10.2 mAh cm 。组装的软包电池在0.1 C首次放电时容量为1077.9 mAh g 。在0.1 C下43次循环后容量降至71.3%。在这项工作中,我们提议利用高熵合金作为催化剂,不仅可以提高锂硫电池的循环稳定性,还能推动高熵合金在储能应用中的发展。