A Dual-Functional Electrolyte Additive for High-Performance Potassium Metal Batteries
Artikel i vetenskaplig tidskrift, 2023

Potassium metal batteries (KMBs) coupled with layered transition metal oxides as cathode materials are a promising energy−storage technology owing to low cost and high capacity. However, uncontrollable dendritic growth in the K−metal anode and chemical reactivity of the layered transition metal oxide cathode against the electrolyte solution cause KMBs to suffer from low Coulombic efficiency, rapid capacity fading, and critical safety issues. In this study, an electrolyte engineering strategy is introduced by introducing adiponitrile (ADN) as a dual−functional electrolyte additive containing an electron−rich nitrile group (C≡N) in its molecule structure. Thus, the addition of 1 wt.% ADN can alter the chemical properties of the electrolyte solution, thereby improving the anode−electrolyte and cathode−electrolyte interfacial stabilities in KMBs. The formation of a potassiophilic compound with C≡N in the solid electrolyte interphase layer can guide the uniform electrodeposition of K and suppress the dendritic growth in the K−metal. Moreover, C≡N forms a strong coordination bond with the oxidized transition metal, leading the reversible redox reactions by mitigating the undesirable disproportionation reaction and improving the thermal stability of the layered transition metal oxide cathode. Computational calculations and experimental characterizations are used to verify the role of ADN additive in enhancing the electrochemical properties of KMBs.

electrolyte additives

phase−field modeling

layered transition metal oxide cathodes

density functional theory

potassium metal anodes

Författare

Jimin Park

Hanyang University

Yeseul Jeong

Chonnam National University

Hyokyeong Kang

Hanyang University

Tae Yeon Yu

Hanyang University

Xieyu Xu

Xi'an Jiaotong University

Yangyang Liu

Xi'an Jiaotong University

Shizhao Xiong

Chalmers, Fysik, Materialfysik

Seon Hwa Lee

POSCO

Yang Kook Sun

Hanyang University

Jang Yeon Hwang

Hanyang University

Advanced Functional Materials

1616-301X (ISSN) 16163028 (eISSN)

Vol. 33 48 2304069

Ämneskategorier

Oorganisk kemi

Materialkemi

Drivkrafter

Hållbar utveckling

Styrkeområden

Energi

Materialvetenskap

DOI

10.1002/adfm.202304069

Mer information

Senast uppdaterat

2024-03-07