Multi-walled carbon nanotubes and chromium ferrites nanoparticles nanohybrids as anode materials for lithium-ion batteries

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作者
Mubasher [1 ]
Mumtaz, M. [1 ]
Lashari, Najeeb Ur Rehman [2 ]
Hassan, Mehwish [3 ]
Tangsee, Songpon [4 ]
Khan, M. Tahir [5 ]
机构
[1] Materials Research Laboratory, Department of Physics, Faculty of Basic and Applied Sciences (FBAS), International Islamic University (IIU), H-10, Islamabad,44000, Pakistan
[2] School of Material Science and Engineering, Xian Polytechnic University, Xian,Shaanxi,710048, China
[3] Department of Sciences and Humanities, National University of Computer and Emerging, Sciences, Islamabad, Pakistan
[4] Department of Mechanical Engineering, Tsinghua University, Beijing,100084, China
[5] Department of Physics, Faculty of Engineering and Applied Sciences, Riphah International University, I-14, Islamabad,44000, Pakistan
关键词
Chromium - Chromium compounds - Morphology - Anodes - Lithium-ion batteries - Multiwalled carbon nanotubes (MWCN) - Synthesis (chemical) - Dispersions - Scanning electron microscopy - Ions - Nanoparticles - Organic solvents - Precipitation (chemical) - Efficiency;
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摘要
Two-step synthesis route was opted for the preparation of multi-walled carbon nanotubes (MWCNTs) and chromium ferrites (CrFe2O4) nanoparticles nanohybrids. In the first step, CrFe2O4 nanoparticles were prepared through co-precipitation route, while in second step an ultra-sonication assisted route was chosen for dispersion of these nanoparticles on the surface of MWCNTs. A polar solvent toluene was used for the dispersion of these nanoparticles and MWCNTs to obtain the final product (MWCNTs)x/CrFe2O4; x = 0–20 wt% nanohybrids. X-rays diffraction (XRD) confirmed the corresponding crystal structures of MWCNTs and (MWCNTs)x/CrFe2O4 nanohybrids. It was evident from scanning electron microscopy (SEM) that CrFe2O4 nanoparticles were evenly distributed on the surface of MWCNTs. The morphology of (MWCNTs)x/CrFe2O4 nanohybrids confined the pulverization of active material that ensured electron-ion transport efficiency during lithiation and de-lithiation. Consequently, these nanohybrids exhibited prime cyclic performance at different values of current densities. These (MWCNTs)x/CrFe2O4 nanohybrids revealed better Li+ storage properties with high Coulombic efficiency ‘Ce’, better cyclic stability, improved reversible specific discharge capacity after 100 cycles and enhanced rate capability. Thus, current study offered a low-cost and facile synthesis route to prepare these nanohybrids as anode materials for lithium-ion batteries. © 2021 Elsevier B.V.
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