4.8 Article

2D Space-Confined Synthesis of Few-Layer MoS2 Anchored on Carbon Nanosheet for Lithium-Ion Battery Anode

Journal

ACS NANO
Volume 9, Issue 4, Pages 3837-3848

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nn506850e

Keywords

2D space-confined synthesis; MOS2; carbon nanosheet; intimate interfacial contact; 3D network; lithium-ion battery anode

Funding

  1. National Natural Science Foundation of China [51422104, 51472177]
  2. Foundation for the Author of National Excellent Doctoral Dissertation of China [201145]
  3. Program for New Century Excellent Talents in University [NCET-12-0408]
  4. National Basic Research Program of China [2010CB934700]

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A facile and scalable 2D spatial confinement strategy is developed for in situ synthesizing highly crystalline MoS2 nanosheets with few layers (<= 5 layers) anchored on 3D-porous carbon nanosheet networks (3D FL-MoS2@PCNNs) as lithium-ion battery anode. During the synthesis, 3D self-assembly of cubic NaCl particles is adopted to not only serve as a template to direct the growth of 3D porous carbon nanosheet networks, but also create a 2D-confined space to achieve the construction of few-layer MOS2 nanosheets robustly lain on the surface of carbon nanosheet walls. In the resulting 3D architecture, the intimate contact between the surfaces of MoS2 and carbon nanosheets can effectively avoid the aggregation and restacking of MoS2 as well as remarkably enhance the structural integrity of the electrode, while the conductive matrix of 3D porous carbon nanosheet networks can ensure fast transport of both electrons and ions in the whole electrode. As a result, this unique 3D architecture manifests an outstanding long-life cycling capability at high rates, namely, a specific capacity as large as 709 mAh g(-1) is delivered at 2 A g(-1) and maintains similar to 95.2% even after 520 deep charge/discharge cycles. Apart from promising lithium-ion battery anode, this 3D FL-MoS2@PCNN composite also has immense potential for applications in other areas such as supercapacitor, catalysis, and sensors.

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