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June 4, 2026National Science Open0 citationsOpen Access

Rationally tuning the d-band center of the open active sites in 2D Ni-based MOFs to enhance the performance of Li-O2 batteries

XZXingzi ZhengMYMengwei YuanPSPeiyuan Su

Key Points

  • This research aims to optimize the electron structure of open active sites in metal-organic frameworks to enhance their performance in Li-O2 batteries.
  • Constructed a heterostructure of functionalized carbon nanotubes (CNTs) and ultrathin 2D Ni-BDC-MOF nanosheet (Ni-MOF-CNTs)
  • Evaluated the electron transport improvement and active site properties, focusing on the d-band center
  • Tested the electrochemical performance including overpotential and capacity in Li-O2 batteries
  • The 2D Ni-MOF-CNTs exhibited enhanced reaction kinetics and reduced overpotential compared to standard configurations
  • Delivered a high specific capacity and improved rate performance
  • Demonstrated exceptional durability with ~850 cycles at 500 mA g-1

Abstract

The rational design of electron structures in open active sites of metal-organic frameworks (MOFs) was a highly effective strategy for enhancing electrocatalytic activity. In this study, we constructed a heterostructure comprising functionalized carbon nanotubes (CNTs) coupled with ultrathin two dimensional Ni-BDC-MOF nanosheet (denoted as 2D Ni-MOF-CNTs). This configuration facilitated the redistribution of electron density between the CNTs and the 2D Ni-MOF. The CNTs served as a rapid electron conduction pathway, significantly improving electron transport across the 2D Ni-MOF plane. Furthermore, the open Ni sites exhibited elevated oxidation states and a lower d-band center, which enhanced the adsorption of the oxygen-containing intermediates. This optimization led to a facilitated oxygen reduction reaction (ORR) and oxygen evolution reaction (OER). The Li-O2 battery incorporating the 2D Ni-MOF-CNTs heterostructure demonstrated superior electrochemical performance, including enhanced reaction kinetics, reduced overpotential, improved rate performance and a high specific capacity. Notably, the battery exhibited exceptional long-term durability, sustaining ~ 850 cycles at 500 mA g-1. This work provides a novel perspective on the design of open active sites in MOF-based materials for advanced, long-lasting battery system.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/6a211549d499ed480b16e8f8https://doi.org/10.1360/nso/20260039
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