| Literature DB >> 28335346 |
Delong Ma1,2, Xiaomin Shi3, Anming Hu4,5.
Abstract
A strategy for growth of porous Ni₂GeO₄ nanosheets on conductive nickel (Ni) foam with robust adhesion as a high-performance electrode for Li-ion batteries is proposed and realized, through a facile two-step method. It involves the low temperature hydro-thermal synthesis of bimetallic (Ni, Ge) hydroxide nanosheets precursor on Ni foam substrates and subsequent thermal transformation to porous Ni₂GeO₄ nanosheets. The as-prepared Ni₂GeO₄ nanosheets possess many interparticle mesopores with a size range from 5 to 15 nm. The hierarchical structure of porous Ni₂GeO₄ nanosheets supported by Ni foam promises fast electron and ion transport, large electroactive surface area, and excellent structural stability. The efficacy of the specially designed structure is demonstrated by the superior electrochemical performance of the generated Ni₂GeO₄ nanosheets including a high capacity of 1.8 mA·h·cm-2 at a current density of 50 μA·cm-2, good cycle stability, and high power capability at room temperature. Because of simple conditions, this fabrication strategy may be easily extended to other mixed metal oxides (MxGeOy).Entities:
Keywords: Li-ion batteries; Ni foam; Ni2GeO4; Self-standing; porous nanosheets
Year: 2016 PMID: 28335346 PMCID: PMC5245747 DOI: 10.3390/nano6110218
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1(a) X-ray diffraction (XRD) patterns, (b–d) scanning electron microscopy (SEM), and (e,f) transmission electron microscopy (TEM) images of as-prepared precursor.
Figure 2(a) XRD patterns, (b,c) SEM, (d,e) TEM, and (f) high-resolution TEM (HRTEM) images of as-prepared Ni2GeO4.
Figure 3X-ray photoelectron spectroscopy (XPS) spectra of (a) Ni 2p, (b) O 1s and (c) Ge 3d for the as-prepared samples.
Figure 4(a) Representative cyclic voltammetry (CV) curves of Ni2GeO4 porous nanosheets for the first 3 cycles at a scan rate of 0.5 mV·s−1 between 0.01 V and 3 V; (b) Voltage profiles of Ni2GeO4 porous nanosheets at a current density of 50 μA·h·cm−2; (c) Cycling performance of Ni2GeO4 porous nanosheets at a current density of 50 and 200 μA·h·cm−2; (d) Rate performance of Ni2GeO4 porous nanosheets.