April 22 - 26, 2024
Seattle, Washington
May 7 - 9, 2024 (Virtual)
Symposium Supporters
2024 MRS Spring Meeting
EN09.04.24

The Effective 2D Interlayer Architecture of Cu2WS4@N-Doped Graphene Nanocomposite for Oxygen Reduction Reaction and Rechargeable Zn-Air Battery

When and Where

Apr 23, 2024
5:00pm - 7:00pm
Flex Hall C, Level 2, Summit

Presenter(s)

Co-Author(s)

Ranjith Balu1,2,Debabrata Chanda1,2,Mikiyas Mekete Meshesha1,2,Seok Gwon Jang1,2,Bee Lyong Yang1,2

Kumoh National Institute of Technology1,bGHS (Green H2 System) Co., Ltd.2

Abstract

Ranjith Balu1,2,Debabrata Chanda1,2,Mikiyas Mekete Meshesha1,2,Seok Gwon Jang1,2,Bee Lyong Yang1,2

Kumoh National Institute of Technology1,bGHS (Green H2 System) Co., Ltd.2
A new research trend is exploring highly efficient and prolonged catalysts for oxygen evolution reaction (OER) and oxygen reduction reaction (ORR). Even though, it remains a considerable challenge to understand electrochemical performance enhancement in this field. Herein, we synthesized an interlayered architecture of Cu<sub>2</sub>WS<sub>4</sub>@NG nanocomposite and are reported as efficient cathode materials for flexible Zinc-Air batteries. Hierarchical porous interlayers create more active sites due to the unique interlayer architecture. As a result of the synergistic interaction between Cu<sub>2</sub>WS<sub>4</sub>@NG interfaces, the rate of charge transfer is facilitated, the number of active sites is increased, and OER/ORR kinetics is positively influenced in an alkaline environment. Theoretical studies indicate that the interlayered architecture tuning of the electronic structure of Cu<sub>2</sub>WS<sub>4</sub>@NG nanocomposite, which is significantly increases the electrical conductivity and catalytic activity. The prepared catalyst will be delivers an excellent half-wave potential for ORR and a low overpotential for OER. Furthermore, the quasi-solid state flexible ZACs will be fabricate and testing for commercial purpose.<br/><b>Acknowledgement</b><br/>This work was supported by the Technology development Program (RS-2023-00218808) funded by the Ministry of SMEs and Startups (MSS, Korea), Technology development Program (Project No.: S2960707) funded by the Ministry of SMEs and Startups (MSS, Korea). By the Basic Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Education, Science, and Technology (MEST) [grant numbers: 2021R1A2C1006010]. and by the Technology development Program (RS-2023-00218808) funded by the Ministry of SMEs and Startups (MSS, Korea)

Keywords

Cu | S | x-ray diffraction (XRD)

Symposium Organizers

Christopher Barile, University of Nevada, Reno
Nathalie Herlin-Boime, CEA Saclay
Michel Trudeau, Concordia University
Edmund Chun Ming Tse, University Hong Kong

Session Chairs

Nathalie Herlin-Boime
Michel Trudeau
Edmund Chun Ming Tse

In this Session