法拉第效率
材料科学
阳极
化学工程
阴极
电化学
锂(药物)
吸附
电极
碳纤维
纳米技术
能量转换效率
功率密度
密度泛函理论
导电体
电流密度
碳纳米管
纳米颗粒
相间
复合数
电容器
表面工程
工作(物理)
作者
You‐Kang Duan,Ai‐Jun Jiao,Zhen‐Hai Fu,Shi-Chun Zhang,Zhiwei Li,Yong-Ming Zhang,Tong Su
标识
DOI:10.1021/acsami.6c04859
摘要
Low initial Coulombic efficiency (ICE), caused by irreversible conversion reactions and excessive lithium consumption, remains a critical challenge for SnO 2 -based anodes. In this work, we rationally construct a SnO 2 –NiO/Ni–Carbon composite via a metal–organic framework (MOF)-derived strategy, in which SnO 2 nanoparticles are integrated with NiO/Ni heterophases embedded in a conductive carbon matrix. The interface-rich architecture enables synergistic regulation of conversion/alloying reactions and interfacial Li + storage, thereby mitigating irreversible Li consumption in the first cycle. Benefiting from the strengthened interfacial interactions, the optimized SnO 2 –NiO/Ni–Carbon electrode delivers an initial discharge capacity of 1102 mAh g –1 and an initial charge capacity of 1035.1 mAh g –1, corresponding to a high ICE of 93.9%. In addition, a reversible capacity of 1184.5 mAh g –1 is maintained after 180 cycles at 0.2 A g –1, demonstrating enhanced structural stability. Voltage-resolved electrochemical analysis suggests that the NiO/Ni heterointerfaces contribute to stabilizing the conversion reactions of SnO 2 and tailoring the early-stage interphase evolution. Density functional theory (DFT) calculations further reveal enhanced Li adsorption affinity at the SnO 2 –NiO/Ni interfacial configurations (as a comparative descriptor), supporting the experimental observations. Furthermore, a lithium–ion capacitor assembled with the SnO 2 –NiO/Ni–Carbon anode and activated carbon cathode exhibits an energy density of 183.9 Wh kg –1 at a power density of 220 W kg –1 . This work highlights the critical role of multiphase interfacial engineering in simultaneously improving ICE and long-term cycling stability of SnO 2 -based anodes.
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