Zhifan Song, Ruyi Bi, Jianhao Li, Yilei He, Fu Rao, Xiaoyu Chen, Jiangyan Wang, Zumin Wang, Ranbo Yu, Dan Wang
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Owing to the improved ion/electron transmittability and the mutual shielding effect, an obvious positive correlation between rate capability and stability with 1T-MoS<sub>2</sub> content was established. The optimized 1T-MoS<sub>2</sub>/NiS<sub>2</sub> nanosheets (NMS-2) with 1T phase purity of up to 67.6% in MoS<sub>2</sub> demonstrated exceptional specific capacity (579.4 C g<sup>−1</sup> at 1 A g<sup>−1</sup>) and impressive rate capability (345.0 C g<sup>−1</sup> at 30 A g<sup>−1</sup>), which suggests much faster kinetics compared to pure NiS<sub>2</sub>. Notably, the hybrid supercapacitor (HSC) assembled with NMS-2 as the cathode and activated carbon as the anode (NMS-2//AC HSC) exhibited a maximum specific capacitance of 137.4 F g<sup>−1</sup> at 1 A g<sup>−1</sup>. Furthermore, this HSC can deliver a high energy density of 45.9 Wh kg<sup>−1</sup> at 774.9 W kg<sup>−1</sup>, and could retain 17.7 Wh kg<sup>−1</sup> even at a high power density of 7731.7 W kg<sup>−1</sup>. After 5000 cycles at a high current density of 5 A g<sup>−1</sup>, the HSC still remained 93.23% of its initial capacitance with an extremely low fading rate of 0.0014% per cycle.</p>","PeriodicalId":16154,"journal":{"name":"Journal of Materials Science & Technology","volume":null,"pages":null},"PeriodicalIF":11.2000,"publicationDate":"2024-09-14","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Metallic 1T-MoS2 boosts the kinetics for NiS2-based hybrid supercapacitors with superb rate performance\",\"authors\":\"Zhifan Song, Ruyi Bi, Jianhao Li, Yilei He, Fu Rao, Xiaoyu Chen, Jiangyan Wang, Zumin Wang, Ranbo Yu, Dan Wang\",\"doi\":\"10.1016/j.jmst.2024.08.045\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>NiS<sub>2</sub> with high theoretical capacitance shows great potential for supercapacitors (SCs). However, the poor cycling stability and sluggish redox kinetics have limited the development of high-rate NiS<sub>2</sub>-based SCs. Integrating materials with high conductivity potentially reinforces its structure and improves its rate capability. 1T-MoS<sub>2</sub> featuring extended interlayer spacing and superior electronic conductivity emerges as an ideal candidate. Therefore, we designed a hybrid material with an alternating interconnected structure of NiS<sub>2</sub> and MoS<sub>2</sub> with adjustable content of 1T-MoS<sub>2</sub>. Owing to the improved ion/electron transmittability and the mutual shielding effect, an obvious positive correlation between rate capability and stability with 1T-MoS<sub>2</sub> content was established. The optimized 1T-MoS<sub>2</sub>/NiS<sub>2</sub> nanosheets (NMS-2) with 1T phase purity of up to 67.6% in MoS<sub>2</sub> demonstrated exceptional specific capacity (579.4 C g<sup>−1</sup> at 1 A g<sup>−1</sup>) and impressive rate capability (345.0 C g<sup>−1</sup> at 30 A g<sup>−1</sup>), which suggests much faster kinetics compared to pure NiS<sub>2</sub>. Notably, the hybrid supercapacitor (HSC) assembled with NMS-2 as the cathode and activated carbon as the anode (NMS-2//AC HSC) exhibited a maximum specific capacitance of 137.4 F g<sup>−1</sup> at 1 A g<sup>−1</sup>. Furthermore, this HSC can deliver a high energy density of 45.9 Wh kg<sup>−1</sup> at 774.9 W kg<sup>−1</sup>, and could retain 17.7 Wh kg<sup>−1</sup> even at a high power density of 7731.7 W kg<sup>−1</sup>. 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引用次数: 0
摘要
具有高理论电容的 NiS2 在超级电容器(SC)方面具有巨大潜力。然而,较差的循环稳定性和缓慢的氧化还原动力学限制了基于 NiS2 的高速率 SC 的发展。整合具有高导电性的材料有可能强化其结构并提高其速率能力。1T-MoS2 具有扩展的层间间距和优异的电子导电性,是一种理想的候选材料。因此,我们设计了一种具有 NiS2 和 MoS2 交替互连结构、1T-MoS2 含量可调的混合材料。由于离子/电子传输性和相互屏蔽效应的改善,速率能力和稳定性与 1T-MoS2 含量之间建立了明显的正相关。优化后的 1T-MoS2/NiS2 纳米片(NMS-2)在 MoS2 中的 1T 相纯度高达 67.6%,表现出卓越的比容量(1 A g-1 时为 579.4 C g-1)和令人印象深刻的速率能力(30 A g-1 时为 345.0 C g-1),这表明其动力学速度比纯 NiS2 快得多。值得注意的是,以 NMS-2 为阴极、活性炭为阳极组装而成的混合超级电容器(HSC)(NMS-2//AC HSC)在 1 A g-1 时的最大比电容为 137.4 F g-1。此外,这种 HSC 还能在 774.9 W kg-1 的功率密度下提供 45.9 Wh kg-1 的高能量密度,即使在 7731.7 W kg-1 的高功率密度下也能保持 17.7 Wh kg-1。在 5 A g-1 的高电流密度下循环 5000 次后,该 HSC 仍能保持其初始电容的 93.23%,且衰减率极低,仅为 0.0014%/次。
Metallic 1T-MoS2 boosts the kinetics for NiS2-based hybrid supercapacitors with superb rate performance
NiS2 with high theoretical capacitance shows great potential for supercapacitors (SCs). However, the poor cycling stability and sluggish redox kinetics have limited the development of high-rate NiS2-based SCs. Integrating materials with high conductivity potentially reinforces its structure and improves its rate capability. 1T-MoS2 featuring extended interlayer spacing and superior electronic conductivity emerges as an ideal candidate. Therefore, we designed a hybrid material with an alternating interconnected structure of NiS2 and MoS2 with adjustable content of 1T-MoS2. Owing to the improved ion/electron transmittability and the mutual shielding effect, an obvious positive correlation between rate capability and stability with 1T-MoS2 content was established. The optimized 1T-MoS2/NiS2 nanosheets (NMS-2) with 1T phase purity of up to 67.6% in MoS2 demonstrated exceptional specific capacity (579.4 C g−1 at 1 A g−1) and impressive rate capability (345.0 C g−1 at 30 A g−1), which suggests much faster kinetics compared to pure NiS2. Notably, the hybrid supercapacitor (HSC) assembled with NMS-2 as the cathode and activated carbon as the anode (NMS-2//AC HSC) exhibited a maximum specific capacitance of 137.4 F g−1 at 1 A g−1. Furthermore, this HSC can deliver a high energy density of 45.9 Wh kg−1 at 774.9 W kg−1, and could retain 17.7 Wh kg−1 even at a high power density of 7731.7 W kg−1. After 5000 cycles at a high current density of 5 A g−1, the HSC still remained 93.23% of its initial capacitance with an extremely low fading rate of 0.0014% per cycle.
期刊介绍:
Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.