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Development of ‘Current Collector for Next-Generation Anode-Free...
  • 글쓴이 : Communication Team
  • 조회 : 88
  • 일 자 : 2024-04-23


Development of ‘Current Collector for Next-Generation Anode-Free Solid-State Battery’
Interfacial stability and long-term operation ensured through application of lithium-friendly metallic coating layer   

Current collector for high-performance anode-free solid-state batteries was developed.
Professor Yu Seung-ho’s group published their results in Energy Storage Materials.

 

 

(왼쪽에서) 유승호 교수(교신저자, 화공생명공학과), 최지원 박사(공동 교신저자, KIST 전자재료연구센터), 이지현 석사과정(제1저자, 화공생명공학과), 오상환 박사과정(제1저자, 화공생명공학과), 임해나 박사(제1저자, KIST), 이홍주 석사(제1저자, 화공생명공학과)

▲ (From left) Professor Yu Seung-ho (corresponding author, Department of Chemical and Biological Engineering), Dr. Choi Ji-won (co-corresponding author, Electronic Materials Research Center at KIST), 

Lee Ji-hyun (master student, first author, Department of Chemical and Biological Engineering), Oh Sang-hwan (doctoral student, first author, Department of Chemical and Biological Engineering), 

Dr. Yim Hae-na (first author, KIST), and Lee Hong-ju (master student, first author, Department of Chemical and Biological Engineering).

 

 

Professor Yu Seung-ho’s group of the Department of Chemical and Biological Engineering in the College of Engineering and Dr. Choi Ji-won’s group at KIST applied a lithium-friendly metallic coating layer to the surface of an anode current collector to increase the interfacial stability of next-generation anode-free solid-state batteries, thereby ensuring long-term operation and presenting a direction for studies on anode-free solid-state battery systems.


The results of this study were published online in the international journal, Energy Storage Materials (IF=20.4), on April 8.
- Title of article : Interfacial stabilization strategy via In-doped Ag metal coating enables a high cycle life of anode-free solid-state Li batteries
- Article URL : https://www.sciencedirect.com/science/article/pii/S2405829724002253

Unlike lithium-ion batteries that use existing liquid electrolytes, solid-state batteries are next-generation batteries that use a solid electrolyte to improve stability by avoiding the ignition risk that occurs with an organic liquid electrolyte. In addition, of the four major elements of a battery, an anode-free battery, that is, one with no ‘anode’, is best able to increase energy density. Anode-free solid-state batteries with reduced ignition properties and increased energy densities are one of the types of next-generation batteries recently attracting much attention in academia. However, anode-free solid-state batteries have the disadvantage that long-term operation is difficult due to poor interfacial stability between the anode current collector and the solid electrolyte. Accordingly, studies have been conducted to improve interfacial stability and achieve long-term operation.

In an anode-free solid-state battery system, an anode current collector is stainless steel and has a low affinity for lithium, so lithium ions are not uniformly electrodeposited on the anode current collector during charging, causing lithium dendrites and short-circuiting of the battery. Therefore, to induce the uniform electrodeposition of lithium ions, a method coating the surface of an anode current collector with lithium-friendly material was studied. Particularly, silver (Ag), which has a high affinity for lithium, is known to cause an alloy reaction with lithium and lead to a significant performance improvement when used in an anode-free all-solid battery current collector.

The research group reported that a small amount of indium (In) when added to the silver, with its high lithium affinity, caused a synergic effect between indium and silver. The addition of the small amount of indium resulted in performance improvement of over three times compared to the previous case where the anode current collector was coated with silver only. The research group used the co-sputter coating technique to coat the anode current collector with both silver and indium, and revealed the effect of adding a small amount of indium by combining the results from an electrochemical analysis and computational chemistry.

Professor Yu of the Department of Chemical and Biological Engineering said, “Anode-free solid-state batteries are drawing attention in academia as a new type of battery system that can increase energy density.” He also added, “Our results showed that coating with a lithium-friendly metal is an effective strategy for improving the short lifespan of anode-free solid-state batteries. We hope that our results can contribute to improving the interfacial stability and performance of anode-free solid-state batteries.”

This study was supported by the National Research Foundation of Korea (NRF) under the Ministry of Science, ICT & Future Planning.

 

 

<Figure 1>

그림 설명 : 음극 집전체 표면에 리튬 친화성 금속 코팅을 진행했을 때 나타나는 전지 수명향상을 표현한 그래프

▲ Image description: A graph illustrating the improvement in battery lifespan achieved by coating the surface of an anode current collector with a lithium-friendly metal.

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