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独立的 MOF 衍生的蜂窝状多孔 MnOC@CC 作为锂氧电池中可逆 LiOH 化学的电催化剂。

Freestanding MOF-Derived Honeycomb-Shape Porous MnOC@CC as an Electrocatalyst for Reversible LiOH Chemistry in Li-O Batteries.

机构信息

School of Chemistry and Chemical Engineering, Central South University, Changsha 410083, Hunan, China.

出版信息

ACS Appl Mater Interfaces. 2023 May 17;15(19):23115-23123. doi: 10.1021/acsami.3c01599. Epub 2023 May 2.

Abstract

In rechargeable Li-O batteries, the electrolyte and the electrode are prone to be attacked by aggressive intermediates (O and LiO) and products (LiO), resulting in low energy efficiency. It has been reported that in the presence of water, the formation of low-activity LiOH is more stable for electrolyte and electrode, effectively reducing the production of parasitic products. However, the reversible formation and decomposition of LiOH catalyzed by solid catalysts is still a challenge. Here, a freestanding metal-organic framework (MOF)-derived honeycomb-shape porous MnOC@CC cathode was prepared for Li-O batteries by in situ growth of urchin-like Mn-MOFs on carbon cloth (CC) and carbonization. The battery with the MnOC@CC cathode exhibits an ultrahigh practical discharge specific capacity of 22,838 mAh g at 200 mA g, high-rate capability, and more stable cycling, which is superior to the MnOC powder cathode. X-ray diffraction and Fourier transform infrared results identify that the discharge product of the batteries is LiOH rather than highly active LiO, and no parasitic products were found during operation. The MnOC@CC cathode can induce the formation of flower-like LiOH in the presence of water due to its unique porous structure and directional alignment of Mn-O centers. This work achieves the reversible formation and decomposition of LiOH in the presence of water, offering some insights into the practical application of semiopen Li-O batteries.

摘要

在可充式 Li-O 电池中,电解质和电极容易受到活性中间体(O 和 LiO)和产物(LiO)的攻击,导致能量效率低下。据报道,在存在水的情况下,电解质和电极中低活性 LiOH 的形成更为稳定,可有效减少寄生产物的生成。然而,由固体催化剂催化 LiOH 的可逆形成和分解仍然是一个挑战。在这里,通过在碳布(CC)和碳化过程中原位生长刺猬状的 Mn-MOF,制备了用于 Li-O 电池的独立式金属有机骨架(MOF)衍生的蜂窝状多孔 MnOC@CC 阴极。具有 MnOC@CC 阴极的电池在 200 mA g 的电流密度下表现出超高的实际放电比容量 22,838 mAh g,高倍率性能和更稳定的循环性能,优于 MnOC 粉末阴极。X 射线衍射和傅里叶变换红外结果表明,电池的放电产物是 LiOH 而不是高活性 LiO,并且在运行过程中没有发现寄生产物。由于其独特的多孔结构和 Mn-O 中心的定向排列,MnOC@CC 阴极可以在存在水的情况下诱导形成花状 LiOH。这项工作实现了在存在水的情况下 LiOH 的可逆形成和分解,为半开放式 Li-O 电池的实际应用提供了一些思路。

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