Structural Engineering of Carbon Host Derived from Organic Pigment toward Physicochemically Confinement and Efficient Conversion of Polysulfide for Lithium–Sulfur Batteries

Author:

Heo Woo Sub1,Kwon Woong2,Lee Taewoong13,Chae Seongwook13,Park Jae Bin1,Park Minjoon4,Jeong Euigyung2,Lee Jin Hong15,Lee Seung Geol3ORCID

Affiliation:

1. School of Chemical Engineering Pusan National University 2, Busandaehak‐ro 63beon‐gil, Geumjeong‐gu Busan 46241 Republic of Korea

2. Department of Textile System Engineering Kyungpook National University 80, Daehak‐ro, Buk‐gu Daegu 41566 Republic of Korea

3. Department of Materials Science and Engineering Ulsan National Institute of Science and Technology (UNIST) Ulsan 44919 Republic of Korea

4. Department of Nanoenergy Engineering Pusan National University 50, Busandaehak‐ro 63 Beon‐gil 2, Geumjeong‐gu Busan 46241 Republic of Korea

5. Department of Organic Material Science and Engineering Pusan National University 2, Busandaehak‐ro 63beon‐gil, Geumjeong‐gu Busan 46241 Republic of Korea

Abstract

AbstractLithium–Sulfur Batteries (LSBs) have attracted significant attention as promising next‐generation energy storage systems. However, the commercial viability of LSBs have been hindered due to lithium polysulfides (LiPSs) shuttle effect, resulting in poor cycling stability and low sulfur utilization. To address this issue, herein, the study prepares a sulfur host consisting of micro/mesopore‐enriched activated carbonaceous materials with ultrahigh surface area using organic pigment via facile one‐step activation. By varying the proportion of chemical agent, the pore size and volume of the activated carbonaceous materials are manipulated and their capabilities on the mitigation of LiPSs shuttle effect are investigated. Through the electrochemical measurements and spectroscopic analysis, it is verified that structural engineering of carbon hosts plays a pivotal role in effective physical confinement of LiPSs, leading to the mitigation of LiPSs shuttle effect and sulfur utilization. Additionally, nitrogen and oxygen‐containing functional groups originated from PR show electrocatalytic activation sites, facilitating LiPSs conversion kinetics. The approach can reveal that rational design of carbon microstructures can improve trapping and suppression of LiPSs and shuttle effect, enhancing electrochemical performance of LSBs.

Funder

National Research Foundation of Korea

Korea Electrotechnology Research Institute

Publisher

Wiley

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