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Mn3O4 Quantum Dots Supported on Nitrogen-Doped Partially Exfoliated Multiwall Carbon Nanotubes as Oxygen Reduction Electrocatalysts for High-Performance Zn-Air Batteries

  • Zongxiong Huang
  • , Xueping Qin
  • , Xiefang Gu
  • , Guanzhou Li
  • , Yangchang Mu
  • , Naiguang Wang
  • , Kemakorn Ithisuphalap
  • , Hongxia Wang
  • , Zaiping Guo
  • , Zhicong Shi*
  • , Gang Wu
  • , Minhua Shao
  • *Corresponding author for this work

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

Abstract

Highly efficient and low-cost nonprecious metal electrocatalysts that favor a four-electron pathway for the oxygen reduction reaction (ORR) are essential for high-performance metal-air batteries. Herein, we show an ultrasonication-assisted synthesis method to prepare Mn3O4 quantum dots (QDs, ca. 2 nm) anchored on nitrogen-doped partially exfoliated multiwall carbon nanotubes (Mn3O4 QDs/N-p-MCNTs) as a high-performance ORR catalyst. The Mn3O4 QDs/N-p-MCNTs facilitated the four-electron pathway for the ORR and exhibited sufficient catalytic activity with an onset potential of 0.850 V (vs reversible hydrogen electrode), which is only 38 mV less positive than that of Pt/C (0.888 V). In addition, the Mn3O4 QDs/N-p-MCNTs demonstrated superior stability than Pt/C in alkaline solutions. Furthermore, a Zn-air battery using the Mn3O4 QDs/N-p-MCNTs cathode catalyst successfully generated a specific capacity of 745 mA h g-1 at 10 mA cm-2 without the loss of voltage after continuous discharging for 105 h. The superior ORR activity of Mn3O4 QDs/N-p-MCNTs can be ascribed to the homogeneous Mn3O4 QDs loaded onto the N-doped carbon skeleton and the synergistic effects of Mn3O4 QDs, nitrogen, and carbon nanotubes. The interface binding energy of -3.35 eV calculated by the first-principles density functional theory method illustrated the high stability of the QD-anchored catalyst. The most stable adsorption structure of O2, at the interface between Mn3O4 QDs and the graphene layer, had the binding energy of -1.17 eV, greatly enhancing the ORR activity. In addition to the high ORR activity and stability, the cost of production of Mn3O4 QDs/N-p-MCNTs is low, which will broadly facilitate the real application of metal-air batteries. © 2018 American Chemical Society.
Original languageEnglish
Pages (from-to)23900-23909
JournalACS Applied Materials and Interfaces
Volume10
Issue number28
DOIs
Publication statusPublished - 18 Jul 2018
Externally publishedYes

Bibliographical note

Publication details (e.g. title, author(s), publication statuses and dates) are captured on an “AS IS” and “AS AVAILABLE” basis at the time of record harvesting from the data source. Suggestions for further amendments or supplementary information can be sent to [email protected].

Funding

Z.S. acknowledges the financial support from the National Natural Science Foundation of China (21673051), the Guangdong Science and Technology Department (2016A010104015), and the “One-hundred Talents plan” (220418056) of the Guangdong University of Technology. G.W. acknowledges the financial support from the National Science Foundation (CBET-1604392) along with the Sustainable Manufacturing and Advanced Robotics Technology (SMART) Community of Excellence program at the University at Buffalo, SUNY. H.W thanks the financial support from the Queensland University of Technology through a strategic fund program. M.S thanks the financial support from the National Key R&D Program of China (No. 2017YFB0102900), the Research Grant Council (N_HKUST610/17) of the Hong Kong Special Administrative Region, and Guangdong Special Fund for Science and Technology Development (Hong Kong Technology Cooperation Funding Scheme) (201604030012, 201704030019, and 201704030065).

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

  • DFT
  • electrocatalyst
  • Mn3O4 quantum dots
  • nitrogen-doped partially exfoliated multiwall carbon nanotubes
  • oxygen reduction reaction
  • theoretical calculation
  • Zn-air battery

RGC Funding Information

  • RGC-funded

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