金属学报英文版 ›› 2021, Vol. 34 ›› Issue (3): 435-443.DOI: 10.1007/s40195-021-01205-5
• • 上一篇
收稿日期:2020-10-09
修回日期:2020-12-24
接受日期:2021-01-08
出版日期:2021-03-10
发布日期:2021-03-10
Wei Yang1, Xiaoxian Pang1, Zhao Xue2, Jinhao Ye1, Haosen Fan1, Ting Shu3, Wenzhi Zheng1(
), Shengzhou Chen1(
)
Received:2020-10-09
Revised:2020-12-24
Accepted:2021-01-08
Online:2021-03-10
Published:2021-03-10
Contact:
Wenzhi Zheng,Shengzhou Chen
About author:Shengzhou Chen, szchen@gzhu.edu.cn. [J]. 金属学报英文版, 2021, 34(3): 435-443.
Wei Yang, Xiaoxian Pang, Zhao Xue, Jinhao Ye, Haosen Fan, Ting Shu, Wenzhi Zheng, Shengzhou Chen. Synthesis of Metal Oxides@C (Metal = Ni, Fe) Based Prussian Blue Analogs as a High-performance Anode Material for Lithium-ion Battery[J]. Acta Metallurgica Sinica (English Letters), 2021, 34(3): 435-443.
Fig. 3 SEM images: a Ni3[Fe(CN)6]2 precusor, b NiFe2O4-NiO calcined at 600 °C in air; c Ni3[Fe(CN)6]2@PDA precusor; d NiFe2O4-NiO@C obtained through two-stage low-temperature roasting
Fig. 4 Cyclic voltammogram curves of a NiFe2O4-NiO and b NiFe2O4-NiO@C at a scan rate of 0.1 mV/s; c rate cycle test at various current densities; d Nyquist plots and the equivalent circuit used to fit impedance statistics; e charge/discharge voltage profiles of NiFe2O4-NiO@C at 500 mA/g and f cyclability at 500 mA/g
| Samples | Rs (Ω) | CPE-T | CPE-P | Rct (Ω) | W-R | W-T | W-P |
|---|---|---|---|---|---|---|---|
| NFO | 20.3 | 3.2 × 10-5 | 0.57 | 365.6 | 2.4 × 103 | 2.8 × 102 | 0.48 |
| NFO@C | 19.2 | 5.6 × 10-7 | 0.55 | 32.1 | 4.2 × 106 | 7.1 × 105 | 0.78 |
Table 1 EIS spectrum fitting data of NiFe2O4-NiO@C and NiFe2O4-NiO
| Samples | Rs (Ω) | CPE-T | CPE-P | Rct (Ω) | W-R | W-T | W-P |
|---|---|---|---|---|---|---|---|
| NFO | 20.3 | 3.2 × 10-5 | 0.57 | 365.6 | 2.4 × 103 | 2.8 × 102 | 0.48 |
| NFO@C | 19.2 | 5.6 × 10-7 | 0.55 | 32.1 | 4.2 × 106 | 7.1 × 105 | 0.78 |
Fig. 5 Kinetics information of working electrode, contribution analysis of pseudocapacitance calculation of NiFe2O4-NiO: a cyclic voltammogram curves at various scan rates; b b value calculation; c the fitted CV curves at 0.1 mV/s; d the fitted pseudocapacitance contribution rate at various scan rates
Fig. 6 Kinetics information of working electrode, contribution analysis of pseudocapacitance calculation of NiFe2O4-NiO@C: a cyclic voltammogram curves at different scan rates; b b value calculation; c the fitted CV curves at 0.1 mV/s; d the fitted pseudocapacitance contribution rate at various scan rates
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