Electrochemically Active MoO3/TiN Sulfur Host Inducing Dynamically Reinforced Built‐in Electric Field for Advanced Lithium–Sulfur Batteries

Author:

Lee Jeongyoub1,Kim Sumin1,Park Jung Been2,Park Daerl1,Lee Sangjun13,Choi Changhoon4,Lee Hyungsoo1,Jang Gyumin1,Park Young Sun1,Yun Juwon1,Moon Subin1,Lee Soobin1,Jeong Chang‐Seop1,Kim Jun Hwan1,Choi Heon‐Jin1,Kim Dong‐Wan2,Moon Jooho1ORCID

Affiliation:

1. Department of Materials Science and Engineering Yonsei University 50 Yonsei‐ro Seodaemun‐gu Seoul 03722 Republic of Korea

2. School of Civil Environmental, and Architectural Engineering Korea University Seoul 02841 Republic of Korea

3. Institute of Industrial Science The University of Tokyo 4‐6‐1 Komaba, Meguro Tokyo 153–8505 Japan

4. Department of Environment and Energy Engineering Sungshin Women's University Seoul 01133 Republic of Korea

Abstract

AbstractAlthough various electrocatalysts have been developed to ameliorate the shuttle effect and sluggish Li–S conversion kinetics, their electrochemical inertness limits the sufficient performance improvement of lithium–sulfur batteries (LSBs). In this work, an electrochemically active MoO3/TiN‐based heterostructure (MOTN) is designed as an efficient sulfur host that can improve the overall electrochemical properties of LSBs via prominent lithiation behaviors. By accommodating Li ions into MoO3 nanoplates, the MOTN host can contribute its own capacity. Furthermore, the Li intercalation process dynamically affects the electronic interaction between MoO3 and TiN and thus significantly reinforces the built‐in electric field, which further improves the comprehensive electrocatalytic abilities of the MOTN host. Because of these merits, the MOTN host‐based sulfur cathode delivers an exceptional specific capacity of 2520 mA h g−1 at 0.1 C. Furthermore, the cathode exhibits superior rate capability (564 mA h g−1 at 5 C), excellent cycling stability (capacity fade rate of 0.034% per cycle for 1200 cycles at 2 C), and satisfactory areal capacity (6.6 mA h cm−2) under a high sulfur loading of 8.3 mg cm−2. This study provides a novel strategy to develop electrochemically active heterostructured electrocatalysts and rationally manipulate the built‐in electric field for achieving high‐performance LSBs.

Funder

Ministry of Science and ICT, South Korea

Publisher

Wiley

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