Tuning the d-Band Center via High-Entropy-Induced Lattice Strain Enables Reversible Nanosheet-like Li2O2 Electrocatalysis

Abstract The reversible formation/decomposition of Li2O2 is central to nonaqueous lithium–oxygen (Li–O2) batteries, where sluggish oxygen redox kinetics causes large polarization and limited capacity, undermining their otherwise high theoretical energy density. Here, a high-entropy sulfide catalyst ((CoFeNiMnZn)3S4) is fabricated via a multistep low-temperature strategy. The high-entropy-induced lattice strain regulates the electronic structure and d-band center of the catalyst, thereby optimizing the adsorption behavior of intermediates. Unlike the film- or toroid-like discharge products observed on quaternary catalyst cathodes, nanosheet-like Li2O2 is generated on the (CoFeNiMnZn)3S4 cathode, promoting highly reversible discharge–recharge processes. When employed as cathodes in Li–O2 batteries, the (CoFeNiMnZn)3S4 delivers superior electrochemical performance, including a high discharge capacity (17874 mAh g–1), a low overpotential of 0.57 V, and enhanced cycling stability (over 420 cycles at 1000 mA g–1). This work establishes a new paradigm for designing high-entropy sulfide electrocatalysts toward high-performance Li–O2 batteries.

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Publication Details

Journal
Nano Letters
Published
2026-10-05
DOI
https://doi.org/10.1021/acs.nanolett.6c03851
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
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article

Tuning the d-Band Center via High-Entropy-Induced Lattice Strain Enables Reversible Nanosheet-like Li2O2 Electrocatalysis

Kaiqi Fang, Xuecheng Cao, Ping He, Minghui Cui et al.
Nano Letters
Advanced Battery Materials and Technologies
article

Tuning the d-Band Center via High-Entropy-Induced Lattice Strain Enables Reversible Nanosheet-like Li2O2 Electrocatalysis

Kaiqi Fang, Xuecheng Cao, Ping He, Minghui Cui, Nan Wang, Xiangjun Zheng
article en

Abstract

Abstract The reversible formation/decomposition of Li2O2 is central to nonaqueous lithium–oxygen (Li–O2) batteries, where sluggish oxygen redox kinetics causes large polarization and limited capacity, undermining their otherwise high theoretical energy density. Here, a high-entropy sulfide catalyst ((CoFeNiMnZn)3S4) is fabricated via a multistep low-temperature strategy. The high-entropy-induced lattice strain regulates the electronic structure and d-band center of the catalyst, thereby optimizing the adsorption behavior of intermediates. Unlike the film- or toroid-like discharge products observed on quaternary catalyst cathodes, nanosheet-like Li2O2 is generated on the (CoFeNiMnZn)3S4 cathode, promoting highly reversible discharge–recharge processes. When employed as cathodes in Li–O2 batteries, the (CoFeNiMnZn)3S4 delivers superior electrochemical performance, including a high discharge capacity (17874 mAh g–1), a low overpotential of 0.57 V, and enhanced cycling stability (over 420 cycles at 1000 mA g–1). This work establishes a new paradigm for designing high-entropy sulfide electrocatalysts toward high-performance Li–O2 batteries.

Nano Letters
Jiangsu University (CN), Jiangsu University of Science and Technology (CN), Nanjing University (CN)
Openalex Percentile: Top 21%
Advanced Battery Materials and Technologies
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