Prevention of Carbon Corrosion by TiC Formation on Ti Current Collector in Seawater Batteries

Author:

Cho Yoonjong1,Park Jeongwoo1,Lee Wang‐Geun1,Park Jaehyun1,Shin Kwangho1,Song Inwoo1,Lee Geonwoo1,Cho Jihun1,Kang Seok Ju1ORCID,Kim Youngsik12ORCID,Baek Myung‐Jin1,Lee Dong Woog1ORCID

Affiliation:

1. School of Energy and Chemical Engineering Ulsan National Institute of Science and Technology (UNIST) 50 UNIST‐gil Ulsan 44919 Republic of Korea

2. Energy Materials and Devices Lab 4TOONE corporation 50 UNIST‐gil Ulsan 44919 Republic of Korea

Abstract

AbstractSeawater batteries (SWBs) are a type of sodium‐air batteries that use abundant seawater as the source of the catholyte. A cathode current collector in traditional SWBs is composed of titanium (Ti) and carbon‐based current collectors. The high contact resistance between Ti and carbon‐based current collectors as well as the slow kinetics of oxygen evolution and reduction reactions increase the overpotential, resulting in side reactions such as carbon corrosion. To enhance the performance of SWBs, previous studies have focused on carbon current collectors, catalysts, and polymer binders, while ignoring the importance of Ti. In this study, a facile carbon diffusion technique is employed to successfully form titanium carbide (TiC) on the surface of Ti. SWBs with engineered Ti demonstrate considerably improved performance (four times higher cycling stability, 30% increased power performance, 40% reduced voltage gap) in relation to those with pristine Ti. This significantly improved electrochemical performance is found to be attributable to the prevention of carbon corrosion due to i) the reduction of contact resistance (owing to rough TiC surface) and ii) the electrocatalytic effect of TiC. Finally, engineered Ti is applied to large‐area SWBs and its potential applicability in energy storage systems is confirmed.

Funder

Ulsan National Institute of Science and Technology

National Research Foundation of Korea

Korea Institute of Energy Technology Evaluation and Planning

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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