金属价稳定性和氢键网络使高性能钠离子电池具有长循环寿命的坚固的锰基金属-有机框架阴极

IF 19 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yunling Wu, Yiming Bu, Xinyang Li, Xiangtao Dong, Xuan Zhou, Zipeng Bu, Lijun Fu, Yuping Wu
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引用次数: 0

摘要

钠离子电池(sib)具有巨大的可持续储能潜力,但在正极材料的稳定性和容量方面面临挑战。金属有机骨架(mof)由于其可调的结构和氧化还原活性位点而具有广阔的应用前景,但在循环过程中金属离子价的变化往往会导致结构降解。本文介绍了一种新型锰基MOF (Mn-PTO),它代表了一种专门为增强sib的稳定性和性能而设计的新型MOF。Mn-PTO通过两种协同机制解决价态变化和结构降解问题。首先,它通过将氧化还原活性限制在配体的羰基上,将Mn离子稳定在二价状态,并防止结构崩溃,从而确保价稳定性。其次,它的氢键网络加强了结构的完整性,减轻了反复离子插入和提取的压力。这些创新使Mn-PTO能够提供卓越的电化学性能,包括卓越的循环稳定性,在5a g - 1下,在7000次循环中保持118 mAh g - 1的容量。这种性能超过了大多数报道的有机电极材料。此外,Mn-PTO在20 A g−1时表现出124 mAh g−1的令人印象深刻的速率能力。这些结果坚定地确立了Mn-PTO作为一种突破性的正极材料,为传统mof系统的局限性提供了强大而持久的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Robust Mn-Based Metal–Organic Framework Cathode with Long-Cycle-Life Enabled by Metal Valence Stability and Hydrogen Bond Networks for High-Performance Sodium-Ion Batteries

A Robust Mn-Based Metal–Organic Framework Cathode with Long-Cycle-Life Enabled by Metal Valence Stability and Hydrogen Bond Networks for High-Performance Sodium-Ion Batteries

A Robust Mn-Based Metal–Organic Framework Cathode with Long-Cycle-Life Enabled by Metal Valence Stability and Hydrogen Bond Networks for High-Performance Sodium-Ion Batteries

A Robust Mn-Based Metal–Organic Framework Cathode with Long-Cycle-Life Enabled by Metal Valence Stability and Hydrogen Bond Networks for High-Performance Sodium-Ion Batteries

A Robust Mn-Based Metal–Organic Framework Cathode with Long-Cycle-Life Enabled by Metal Valence Stability and Hydrogen Bond Networks for High-Performance Sodium-Ion Batteries

Sodium-ion batteries (SIBs) hold significant potential for sustainable energy storage but face challenges in cathode material stability and capacity. Metal–organic frameworks (MOFs) are promising owing to their tunable structures and redox-active sites but often suffer structural degradation from metal ion valence changes during cycling. Here, a novel manganese-based MOF (Mn-PTO) is introduced, representing a new class of MOFs specifically engineered for enhanced stability and performance in SIBs. Mn-PTO addresses valence changes and structural degradation through two synergistic mechanisms. First, it ensures valence stability by confining redox activity to the ligand's carbonyl groups, stabilizing Mn ions in the divalent state, and preventing structural collapse. Second, its hydrogen bond network reinforces structural integrity and mitigates stresses from repeated ion insertion and extraction. These innovations enable Mn-PTO to deliver exceptional electrochemical performance, including remarkable cycling stability, maintaining a capacity of 118 mAh g−1 over 7,000 cycles at 5 A g−1. This performance surpasses most reported organic electrode materials. Additionally, Mn-PTO exhibits an impressive rate capability of 124 mAh g−1 at 20 A g−1. These results firmly establish Mn-PTO as a groundbreaking cathode material, offering a robust and durable solution to the limitations of traditional MOF-based systems.

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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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