Understanding the Electron State Effect of Iron Single-Atom for Enhancing Solid–Solid Conversion Kinetics of Sulfur Cathodes

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Guiqiang Cao, Xifei Li, Mengyang Li, Xuan Yang, Ruixian Duan, Ming Li, Qinting Jiang, Jun Li, Jingjing Wang, Mengxin Bai, Huijuan Yang, Yukun Xi, Wenbin Li, Huaming Qian, Yangyang Luo, Jiujun Zhang
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Abstract

Optimizing the solid–solid conversion kinetics has been challenging in lithium–sulfur batteries (LSBs). In this study, a nitrogen and boron dual-coordinated Fe single-atom catalyst (Fe-N2B2/C) was exploited by inducing boron atoms into the coordination shell to disrupt the nitrogen-only coordinated configuration (Fe-N4/C). The intervention of boron reduced the oxidation state of Fe atoms, which increased electron density of the Fe 3d orbital and narrowed band gap between the conduction and valence bands. Furthermore, the elevated d-band center of Fe in Fe-N2B2/C raised the antibonding orbital energy, providing sites for charge transfer and polysulfide adsorption. These electronic modulations endowed Fe-N2B2/C with prominent anchoring capacity and catalytic activity. Consequently, in the ether-based electrolyte, the S@Fe-N2B2/C sulfur cathode delivered an initial capacity of 786 mAh g−1 at 4.0 C, maintaining an impressive capacity retention of 82.7% after 200 cycles and exhibiting a sluggish capacity decay of 0.08% after 500 cycles. Simultaneously, in the all-solid-state system based on halide electrolytes (HEs), the S@Fe-N2B2/C cathode achieved a remarkable discharge capacity (1066 mAh g−1, 0.1 C), high average Coulombic efficiency (>99%) and excellent cyclic stability (0.068%, 0.2 C). This study uncovers the origin of outstanding activity of Fe single-atom catalyst and provides a promising strategy for HEs-based all-solid-state system.

Abstract Image

了解铁单原子对提高硫阴极固-固转化动力学的电子态效应
在锂硫电池(LSB)中,优化固-固转换动力学一直是一项挑战。在本研究中,通过将硼原子诱导到配位壳中以破坏纯氮配位构型(Fe-N4/C),利用了氮和硼双配位铁单原子催化剂(Fe-N2B2/C)。硼的介入降低了铁原子的氧化态,从而增加了铁 3d 轨道的电子密度,缩小了导带和价带之间的带隙。此外,Fe-N2B2/C 中铁的 d 带中心升高,提高了反键轨道能量,为电荷转移和多硫化物吸附提供了场所。这些电子调制赋予了 Fe-N2B2/C 突出的锚定能力和催化活性。因此,在醚基电解质中,S@Fe-N2B2/C 硫阴极在 4.0 C 时的初始容量为 786 mAh g-1,200 个循环后的容量保持率为 82.7%,500 个循环后的容量衰减率为 0.08%。同时,在基于卤化物电解质(HEs)的全固态系统中,S@Fe-N2B2/C 阴极实现了显著的放电容量(1066 mAh g-1,0.1 C)、高平均库仑效率(99%)和优异的循环稳定性(0.068%,0.2 C)。这项研究揭示了铁单原子催化剂卓越活性的来源,为基于 HEs 的全固态系统提供了一种前景广阔的策略。
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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