4.8 Article

Hierarchical Ni-Mo-S and Ni-Fe-S Nanosheets with Ultrahigh Energy Density for Flexible All Solid-State Supercapacitors

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 28, Issue 35, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.201803287

Keywords

energy density; flexible electronics; Ni-Fe-S nanosheets; Ni-Mo-S nanosheets; supercapacitors

Funding

  1. Basic Science Research Program [2017R1A2B3004917]
  2. Nano-Material Technology Development Program through the National Research Foundation (NRF) - Ministry of Science and ICT of Republic of Korea [2016M3A7B4900117]
  3. National Research Foundation of Korea [2016M3A7B4900117, 2017R1A2B3004917] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Highly flexible supercapacitors (SCs) have great potential in modern electronics such as wearable and portable devices. However, ultralow specific capacity and low operating potential window limit their practical applications. Herein, a new strategy for the fabrication of free-standing Ni-Mo-S and Ni-Fe-S nanosheets (NSs) for high-performance flexible asymmetric SC (ASC) through hydrothermal and subsequent sulfurization technique is reported. The effect of Ni2+ is optimized to attain hierarchical Ni-Mo-S and Ni-Fe-S NS architectures with high electrical conductivity, large surface area, and exclusive porous networks. Electrochemical properties of Ni-Mo-S and Ni-Fe-S NS electrodes exhibit that both have ultrahigh specific capacities (approximate to 312 and 246 mAh g(-1) at 1 mA cm(-2)), exceptional rate capabilities (78.85% and 78.46% capacity retention even at 50 mA cm(-2), respectively), and superior cycling stabilities. Most importantly, a flexible Ni-Mo-S NS//Ni-Fe-S NS ASC delivers a high volumetric capacity of approximate to 1.9 mAh cm(-3), excellent energy density of approximate to 82.13 Wh kg(-1) at 0.561 kW kg(-1), exceptional power density (approximate to 13.103 kW kg(-1) at 61.51 Wh kg(-1)) and an outstanding cycling stability, retaining approximate to 95.86% of initial capacity after 10 000 cycles. This study emphasizes the potential importance of compositional tunability of the NS architecture as a novel strategy for enhancing the charge storage properties of active electrodes.

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