A. Sreekumar Menon
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1
Li and Na metals have the highest theoretical anode capacity for Li/Na batteries, but the operational safety hazards stemming from uncontrolled growth of Li/Na dendrites and unstable electrode-electrolyte interfaces hinder their real-world applications. Recently, the emergence of 3D conductive scaffolds aimed at mitigating the dendritic growth to improve the cycling stability has gained traction. However, while achieving 3D scaffolds that are conducive to completely prevent dendritic Li/Na is challenging, the routes proposed to fabricate 3D scaffolds to date are often complex and expensive. This not only leads to sub-optimal battery performance but can make the manufacturing nearly unachievable, compromising their commercial viability. We herein introduce a facile and single-step route to honeycomb-like 3D porous Ni@Cu scaffolds via a hydrogen bubble dynamic template (HBDT) electrodeposition method. The current collectors fabricated by this method offer highly stable cycling performance of Li plating/stripping (>300 cycles at 0.5 mAh cm−2 and over 200 cycles at 1.0 mAh cm−2), attributed to their ability to effectively accommodate Li/Na deposits in their porous networks and to delocalize the charge distribution. The beneficial role of LiNO3 as an electrolyte additive in improving the mechanical integrity of solid electrolyte interface (SEI) and mechanistic insights into how the 3D porous structure facilitates Li/Na plating/stripping are comprehensively presented. Finally, with an outstanding cycling performance of reversible Na deposition (over 240, 110 and 50 cycles for 0.5, 1.0 and 2.0 mAh cm−2 at 1.0 mA cm−2), our findings open new doors to expedite the development of Li/Na metal battery technology.
1. 3-dimensional metallic host for Li metal
2. Surface layer deposition
As the 3D metal host, a 3D porous nickel (3DPNi) substrate was used. It was fabricated in-house through a facile template-free electrodeposition process. Detailed electrochemical Li cycling tests were performed using a symmetric cell to investigate the performance of the substrate. Different aspects of the Li cycling like substrate structure and morphology, electrolyte modification (with LiNO3), kinetics of Li+ diffusion and the electrochemical impedance performance of the substrate were investigated. The 3DPNi substrate was also tested for its compatibility with sodium metal. To investigate the effect of surface layer deposits, atomic layer depositions (ALD) of Al2O3 and TiO2 were done on planar nickel substrates. Each of these were subjected to electrochemical Li cycling tests.
Our results show that the 3DPNi substrate can be effectively cycled with Li for up to 300 cycles at a capacity of 0.5 mAh⋅cm-2 and a current rate of 1 mA⋅cm-2. Increasing the capacity to 3 mAh⋅cm-2 (6 times) at the same current rate resulted in up to 60 cycles. It was also found out that this substrate could be used for sodium metal cycling. ALD on planar substrates have enabled the Li metal to be cycled for more than 300 cycles without failure, albeit at a capacity of 0.25 mAh⋅cm-2 and a current rate of 0.125 mA⋅cm-2. Hence, our study confirms that both the methods significantly improve the performance of the lithium (and sodium) metal anodes. ...
1. 3-dimensional metallic host for Li metal
2. Surface layer deposition
As the 3D metal host, a 3D porous nickel (3DPNi) substrate was used. It was fabricated in-house through a facile template-free electrodeposition process. Detailed electrochemical Li cycling tests were performed using a symmetric cell to investigate the performance of the substrate. Different aspects of the Li cycling like substrate structure and morphology, electrolyte modification (with LiNO3), kinetics of Li+ diffusion and the electrochemical impedance performance of the substrate were investigated. The 3DPNi substrate was also tested for its compatibility with sodium metal. To investigate the effect of surface layer deposits, atomic layer depositions (ALD) of Al2O3 and TiO2 were done on planar nickel substrates. Each of these were subjected to electrochemical Li cycling tests.
Our results show that the 3DPNi substrate can be effectively cycled with Li for up to 300 cycles at a capacity of 0.5 mAh⋅cm-2 and a current rate of 1 mA⋅cm-2. Increasing the capacity to 3 mAh⋅cm-2 (6 times) at the same current rate resulted in up to 60 cycles. It was also found out that this substrate could be used for sodium metal cycling. ALD on planar substrates have enabled the Li metal to be cycled for more than 300 cycles without failure, albeit at a capacity of 0.25 mAh⋅cm-2 and a current rate of 0.125 mA⋅cm-2. Hence, our study confirms that both the methods significantly improve the performance of the lithium (and sodium) metal anodes.