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Sulfides/3D reduced graphene oxide composite with a large specific surface area for high-performance all-solid-state pseudocapacitors

机译:具有大比表面积的硫化物/ 3D还原氧化石墨烯复合材料,用于高性能全固态伪电容器

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摘要

Exploring highly efficient electrode materials is crucial for advancing clean energy storage devices such as pseudocapacitors (PCs). Transition-metal sulfides (TMSs), typically involving conventionally stoichiometric ternary components (such as NiCo2S4 and Ni2CoS4), are suggested as promising electrode nanomaterials for PCs. Herein, a large-specific-surface-area NiS2/CoS2 composite anchored on three-dimensional reduced graphene oxide (NiS2/CoS2/3DGO) is prepared by the sulfuration of a needle-like NiCo-hydroxycarbonate precursor grown on the 3DGO support. The NiS2/CoS2/3DGO composite is endowed with the following advantages: CoS2 and NiS2 composite, a large specific surface area (200.48 m(2) g(-1)) and narrow mesoporous size distribution, as well as high conductivity. The composite electrode indeed delivers a highly attractive capacitance of 2451 F g(-1) at 1 A g(-1), which is comparable or superior to most TMS electrodes reported previously. Furthermore, the all-solid-state NiS2/CoS2/3DGO//activated carbon for PCs achieves a decent energy density and power density at 1 A g(-1), and an attractive reversible capacitance retention of 97.2% after 5000 cycles at the high current density of 20 A g(-1). Such an improvement strategy can be extended for constructing diverse transition-metal sulfides and phosphides as electrode materials for energy storage.
机译:探索高效的电极材料对于推进清洁能源存储设备(例如伪电容器(PC))至关重要。过渡金属硫化物(TMS)通常涉及常规的化学计量三元组分(如NiCo2S4和Ni2CoS4),被认为是有前途的PC电极纳米材料。在此,通过硫化生长在3DGO载体上的针状NiCo-羟基碳酸酯前体,制备了锚固在三维还原氧化石墨烯(NiS2 / CoS2 / 3DGO)上的大比表面积NiS2 / CoS2复合材料。 NiS2 / CoS2 / 3DGO复合材料具有以下优点:CoS2和NiS2复合材料,较大的比表面积(200.48 m(2)g(-1))和窄的介孔尺寸分布以及高电导率。实际上,复合电极在1 A g(-1)时可提供2451 F g(-1)的极具吸引力的电容,该电容可与之前报道的大多数TMS电极相比或更高。此外,用于PC的全固态NiS2 / CoS2 / 3DGO //活性炭在1 A g(-1)时实现了不错的能量密度和功率密度,并且在5,000次循环后,其有吸引力的可逆电容保持率为97.2%。 20 A g(-1)的高电流密度。可以扩展这种改进策略,以构建各种过渡金属硫化物和磷化物作为储能电极材料。

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