材料科学
超级电容器
石墨烯
电极
复合数
电容
化学工程
纳米技术
电化学
碳纤维
氧化物
热液循环
多孔性
碳纳米纤维
电导率
比表面积
纳米复合材料
混合材料
纳米材料
功率密度
纳米纤维
电流密度
储能
水热合成
静电纺丝
作者
Nipa Roy,Mohamed A. Ghanem,Sai Kumar Arla,Arghya Narayan Banerjee,Jong Su Kim,Sang Woo Joo
标识
DOI:10.1021/acsami.5c20534
摘要
The promise of calcium-molybdate-based electrodes for energy-storage applications is restricted by their low conductivity across a range of voltages and limited capacity. This study proposes a novel and simple strategy to address these challenges. In this study, we synthesized broccoli-shaped three-dimensional (3D) interconnected networks by integrating one-dimensional (1D) functionalized carbon nanofibers (f-CNFs) with two-dimensional (2D) reduced graphene oxide (r-GO) nanosheets to form a robust backbone, which effectively stabilized the assembly of spherical-shaped calcium-molybdate (CaMoO 4 ) nanosphere composites (CMCG) using a simple two-step hydrothermal method. Interestingly, air-annealing promoted a morphological transformation toward more spherical shapes, enabling clearer size determination, illustrating pseudocapacitive surface redox reactions including Ca 2+ and MoO 4 2– . The charge-storage properties of the CMCG composite exhibit dominant battery-type behavior with the existence of 1D/2D hybrid carbon networks due to its unique morphology with a highly porous nanostructure, increased voids and cavities, leading to faster diffusion that increases the accumulation/intercalation of charges at the electroactive sites, thereby contributing significantly to the overall capacitance. The specific capacity of the CMCG electrode was initially set to ∼617 C g –1 (172 mAh g –1 ) at 1 A g –1; meanwhile, at 10 A g –1, the specific capacity was decreased to ∼350 C g –1 (97.23 mAh g –1 ), with a remarkable 92% capacitance retention over 5000 cycles, and an ultrahigh energy density of ∼32.19 Wh kg –1 and a power density ∼10 110 W kg –1, which is, so far, the highest value reported for hybrid supercapacitors. Thus, the as-synthesized composite emerges as a promising candidate for next-generation energy storage, combining high electrochemical activity with cost-effective scalability.
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