TY - JOUR
T1 - Mg-Rich LAPONITE® interface protective layer enables reversible, corrosion-resistant anodes for high-performance magnesium metal batteries
AU - Bi, Jingxuan
AU - Huo, Xiaomei
AU - Zhou, Zhenkai
AU - Li, Junhui
AU - Wang, Ke
AU - Du, Zhuzhu
AU - Ai, Wei
N1 - Publisher Copyright:
© 2025 The Royal Society of Chemistry.
PY - 2025
Y1 - 2025
N2 - Magnesium metal batteries (MMBs) are considered one of the most promising candidates for the post-lithium era but face significant challenges, including non-uniform plating, irregular stripping, and interface passivation. Herein, we have developed a highly reversible, passivation-free, and corrosion-resistant Mg metal anode by integrating a Mg-rich LAPONITE® (Mg-RL) interface protective layer using a doctor-blading technique. The Mg-RL interface protective layer, with its negatively charged interlayer structure, creates abundant cation transport channels and isolates direct contact between the electrolyte and anode, thus facilitating highly reversible Mg plating/stripping while suppressing anode passivation. As a result, Mg-RL/Mg-based symmetric cells exhibit exceptional cycling stability, maintaining over 1500 h in APC electrolyte and 800 h in Mg(TFSI)2 electrolyte under practical current densities and area capacities. Furthermore, the corresponding Mo6S8-based full cells demonstrate excellent electrochemical performance, and the Mg-S pouch cells successfully power a toy car, demonstrating practical viability. This study presents a simple, cost-effective strategy for constructing artificial interface protective layers of Mg metal anodes, advancing the development of stable and safe MMBs.
AB - Magnesium metal batteries (MMBs) are considered one of the most promising candidates for the post-lithium era but face significant challenges, including non-uniform plating, irregular stripping, and interface passivation. Herein, we have developed a highly reversible, passivation-free, and corrosion-resistant Mg metal anode by integrating a Mg-rich LAPONITE® (Mg-RL) interface protective layer using a doctor-blading technique. The Mg-RL interface protective layer, with its negatively charged interlayer structure, creates abundant cation transport channels and isolates direct contact between the electrolyte and anode, thus facilitating highly reversible Mg plating/stripping while suppressing anode passivation. As a result, Mg-RL/Mg-based symmetric cells exhibit exceptional cycling stability, maintaining over 1500 h in APC electrolyte and 800 h in Mg(TFSI)2 electrolyte under practical current densities and area capacities. Furthermore, the corresponding Mo6S8-based full cells demonstrate excellent electrochemical performance, and the Mg-S pouch cells successfully power a toy car, demonstrating practical viability. This study presents a simple, cost-effective strategy for constructing artificial interface protective layers of Mg metal anodes, advancing the development of stable and safe MMBs.
UR - http://www.scopus.com/inward/record.url?scp=105000326596&partnerID=8YFLogxK
U2 - 10.1039/d5qi00310e
DO - 10.1039/d5qi00310e
M3 - 文章
AN - SCOPUS:105000326596
SN - 2052-1553
JO - Inorganic Chemistry Frontiers
JF - Inorganic Chemistry Frontiers
ER -