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Chlorine Axial Coordination Activated Lanthanum Single Atoms for Efficient Oxygen Electroreduction with Maximum Utilization

  • Leilei Yin
  • , Mingzi Sun
  • , Shuai Zhang
  • , Yongkang Huang
  • , Bolong Huang*
  • , Yaping Du*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Currently, there are still obstacles to rationally designing the ligand fields to activate rare-earth (RE) elements with satisfactory intrinsic electrocatalytic reactivity. Herein, axial coordination strategies and nanostructure design are applied for the construction of La single atoms (La-Cl SAs/NHPC) with satisfactory oxygen reduction reaction (ORR) activity. The nontrivial LaN4Cl2 motifs configuration and the hierarchical porous carbon substrate that facilitates maximized metal atom utilization ensure high half-wave potential (0.91 V) and significant robustness in alkaline media. The aqueous and flexible Zinc-air battery (ZAB) integrating La-Cl SAs/NHPC as the cathode catalyst exhibits a maximum power density of 260.7 and 68.5 mW cm−2, representing one of the most impressive RE-based ORR electrocatalysts to date. Theoretical calculations have demonstrated that the Cl coordination evidently modulate the electronic structures of La sites, which promoted electron transfer efficiency by d-p orbital couplings. With enhanced electroactivity of La sites, the adsorptions of key intermediates are optimized to alleviate the energy barriers of the potential-determining step. Importantly, this preparation strategy is also successfully applied to other REs. This work provides perspectives for near-range electronic structure modulation of RE-SAs based on a nonplanar coordination micro-environment for efficient electrocatalysis. © 2024 Wiley-VCH GmbH.
Original languageEnglish
Article number2416387
JournalAdvanced Materials
Volume37
Issue number7
Online published23 Dec 2024
DOIs
Publication statusPublished - 19 Feb 2025
Externally publishedYes

Funding

The authors gratefully acknowledge the support from the Research Grant Council of Hong Kong (15304023, 15304724, C1003-23Y), the National Natural Science Foundation of China/Research Grant Council of Hong Kong Joint Research Scheme (N_PolyU502/21), the National Natural Science Foundation of China/Research Grants Council of Hong Kong Collaborative Research Scheme (CRS_PolyU504/22), the National Science Foundation for Distinguished Young Scholars of China (22425503), the National Natural Science Foundation of China (22371131), the 111 Project (B18030) from China, the Outstanding Youth Project of Tianjin Natural Science Foundation (20JCJQJC00130), the funding for the Projects of Strategic Importance of The Hong Kong Polytechnic University (Project Code: 1-ZE2 V), the Shenzhen Fundamental Research Scheme-General Program (JCYJ20220531090807017), Natural Science Foundation of Guangdong Province (2023A1515012219), and the Key Laboratory of Rare Earths, Chinese Academy of Sciences for financial support.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Research Keywords

  • axial coordination
  • oxygen electroreduction
  • rare earth
  • single atom catalyst
  • zinc-air battery

RGC Funding Information

  • RGC-funded

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