材料科学
电解质
化学工程
锂(药物)
阳极
石墨烯
基质(水族馆)
纳米技术
图层(电子)
沉积(地质)
氧化物
功率密度
法拉第效率
纳米颗粒
能量密度
原子层沉积
电极
降水
金属锂
锂离子电池的纳米结构
电流密度
金属
作者
S.W. Li,Ruibin Liang,Jinling Wang,Bangyong Sun,Juntao Zou,Yue Ma
标识
DOI:10.1021/acsaem.5c02534
摘要
The application of lithium metal anodes in high-energy-density batteries is limited by unstable interfacial dynamics and poor Li utilization, particularly in anode-free designs, where the electrolyte is minimal and the Li + supply is restricted. Herein, a lightweight (0.32 mg cm –2 ), ultrathin (∼2 μm) interfacial protective layer is constructed using size-tunable Ag nanoparticles adorned with few-layer graphene oxide (Ag NPs@GO) via a facile precipitation process. The Ag NPs regulate the lithium nucleation/growth, and the GO dissipates the volume expansion of the deposited lithium. The introduction of a Ag NPs@GO interfacial layer provides efficient interfacial modification to the Cu substrate, thereby boosting lithium utilization efficiency in both symmetric and 2 mAh full cells paired with the Li[Ni 0.8 Mn 0.1 Co 0.1 ]O 2 cathode. The full cell delivers an energy density of 513.2 Wh kg –1 and a maximum power energy of 2052.8 W kg –1, calculated with the active materials. Furthermore, Li–Ag NPs@GO substrate establishes its outstanding air-defendable capability, preserving its pristine morphology and color after 100 min of air exposure with a lithium deposition amount of 10 mAh cm –2 . This ultrathin interfacial modification approach offers a viable method to achieve a quasi-anode-free design, minimizing excess Li usage while maintaining balanced energy/power densities and enhanced cycling durability.
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