Interfacial Evolution of the Solid Electrolyte Interphase and Lithium Deposition in Graphdiyne-Based Lithium-Ion Batteries.
Jing WanZicheng ZuoZhen-Zhen ShenWan-Ping ChenGui-Xian LiuXin-Cheng HuYue-Xian SongSen XinYu-Guo GuoRui WenYuliang LiLi-Jun WanPublished in: Journal of the American Chemical Society (2022)
All-carbon graphdiyne (GDY)-based materials have attracted extensive attention owing to their extraordinary structures and outstanding performance in electrochemical energy storage. Straightforward insights into the interfacial evolution at GDY electrode/electrolyte interface could crucially enrich the fundamental comprehensions and inspire targeted regulations. Herein, in situ optical microscopy and atomic force microscopy monitoring of the GDY and N-doped GDY electrodes reveal the interplay between the solid electrolyte interphase (SEI) and Li deposition. The growth and continuous accumulation of the flocculent-like SEI is directly tracked at the surface of GDY electrode. Moreover, the nanoparticle-shaped SEI homogeneously propagates at the interface when N configurations are involved, providing a critical clue for the N-doping effects of stabilizing interfaces and homogenizing Li deposition. This work probes into the dynamic evolution and structure-reactivity correlation in detail, creating effective strategies for GDY-based materials optimization in lithium-ion batteries.
Keyphrases
- solid state
- ionic liquid
- atomic force microscopy
- ion batteries
- high speed
- single molecule
- high resolution
- molecular dynamics simulations
- small molecule
- gold nanoparticles
- electron transfer
- quantum dots
- working memory
- carbon nanotubes
- genome wide
- gene expression
- living cells
- cancer therapy
- highly efficient
- optical coherence tomography
- photodynamic therapy
- mass spectrometry
- metal organic framework