TY - JOUR
T1 - A Lithiophilic–Lithiophobic Gradient Solid Electrolyte Interface Toward a Highly Stable Solid-State Polymer Lithium Metal Batteries
AU - Zhai, Pengfei
AU - Ahmad, Niaz
AU - Qu, Shuangquan
AU - Feng, Ligang
AU - Yang, Wen
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/7/3
Y1 - 2024/7/3
N2 - The functional lithiophilic−lithiophobic gradient solid electrolyte interphase (SEI) between Li-metal anode and solid-state polymer electrolytes may be effective in addressing the long-standing issue of side reactions and Li-dendrite growth during repeated deposition or dissolution in solid-state polymer-based high-energy-density batteries. Herein, a reliable lithiophilic–lithiophobic gradient SEI (G-SEI) of LiAg-LiF/Li3N is in situ formed by AgTFSI, used as an additive for polyethylene oxide-based electrolyte (PEO-Ag). The upper layer consists of a lithiophobic LiF/Li3N-rich layer, wherein LiF possesses a high interfacial energy, while Li3N enables fast Li+ diffusion, which synergistically facilitates the uniform deposition of Li+. Lithiophilic Li–Ag alloy can effectively reduce the nucleation overpotential and promote more planar growth of lithium. Furthermore, such G-SEI possesses a high mechanical modulus, mitigating the penetration of dendrites through the SEI and thereby preventing the continuous degradation of the PEO-based electrolyte. As a result, an over three times improvement in the lifespan of Li | PEO-Ag | LFP cell is achieved, demonstrating an 81.4% capacity retention rate after 500 cycles at 1C, as compared to Li | PEO | LFP cell with common SEI. Thus, the developments of the lithiophilic-lithiophobic gradient SEI provide a substantial path toward high-performance solid-state lithium batteries.
AB - The functional lithiophilic−lithiophobic gradient solid electrolyte interphase (SEI) between Li-metal anode and solid-state polymer electrolytes may be effective in addressing the long-standing issue of side reactions and Li-dendrite growth during repeated deposition or dissolution in solid-state polymer-based high-energy-density batteries. Herein, a reliable lithiophilic–lithiophobic gradient SEI (G-SEI) of LiAg-LiF/Li3N is in situ formed by AgTFSI, used as an additive for polyethylene oxide-based electrolyte (PEO-Ag). The upper layer consists of a lithiophobic LiF/Li3N-rich layer, wherein LiF possesses a high interfacial energy, while Li3N enables fast Li+ diffusion, which synergistically facilitates the uniform deposition of Li+. Lithiophilic Li–Ag alloy can effectively reduce the nucleation overpotential and promote more planar growth of lithium. Furthermore, such G-SEI possesses a high mechanical modulus, mitigating the penetration of dendrites through the SEI and thereby preventing the continuous degradation of the PEO-based electrolyte. As a result, an over three times improvement in the lifespan of Li | PEO-Ag | LFP cell is achieved, demonstrating an 81.4% capacity retention rate after 500 cycles at 1C, as compared to Li | PEO | LFP cell with common SEI. Thus, the developments of the lithiophilic-lithiophobic gradient SEI provide a substantial path toward high-performance solid-state lithium batteries.
KW - Li-dendrite suppression
KW - LiAg–LiF lithiophilic–lithiophobic gradient SEI
KW - high crticle current density
KW - solid polymer electrolytes
KW - solid-state Li metal batteries
UR - http://www.scopus.com/inward/record.url?scp=85186855360&partnerID=8YFLogxK
U2 - 10.1002/adfm.202316561
DO - 10.1002/adfm.202316561
M3 - Article
AN - SCOPUS:85186855360
SN - 1616-301X
VL - 34
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 27
M1 - 2316561
ER -