| Literature DB >> 35564280 |
Hao Gong1,2, Shiguang Bie1,2, Jian Zhang3, Xianbin Ke1,2, Xiaoxing Wang4, Jianquan Liang3, Nian Wu1,2, Qichang Zhang4, Chuanxian Luo1,2, Yanmin Jia4.
Abstract
The Co3O4 electrode is a very promising material owing to its ultrahigh capacitance. Nevertheless, the electrochemical performance of Co3O4-based supercapacitors is practically confined by the limited active sites and poor conductivity of Co3O4. Herein, we provide a facile synthetic strategy of tightly anchoring Co3O4 nanosheets to a carbon fiber conductive cloth (Co3O4@C) using the zeolitic imidazolate framework-67 (ZIF-67) sacrificial template via in situ impregnation and the pyrolysis method. Benefiting from the enhancement of conductivity and the increase in active sites, the binder-free porous Co3O4@C supercapacitor electrodes possess typical pseudocapacitance characteristics, with an acceptable specific capacitance of ~251 F/g at 1 A/g and long-term cycling stability (90% after cycling 5000 times at 3 A/g). Moreover, the asymmetric and flexible supercapacitor composed of Co3O4@C and activated carbon is further assembled, and it can drive the red LED for 6 min.Entities:
Keywords: Co3O4 nanosheet; Co3O4@C; ZIF-67; in situ growth; supercapacitor
Year: 2022 PMID: 35564280 PMCID: PMC9105161 DOI: 10.3390/nano12091571
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.719
Scheme 1Synthesis process of ZIF-67-derived Co3O4@C electrode sample.
Figure 1(a) TG curves and (b) DSC curves of the ZIF-67 sample powder and the self-assembled ZIF-67@C sample in air.
Figure 2(a) The XRD pattern result of the ZIF-67-derived Co3O4 annealed at different temperatures, and (b) corresponding Raman spectra. (c) The XRD pattern result of the ZIF-67 and the ZIF-67-derived Co3O4. (d) The Raman spectra of the ZIF-67-derived Co3O4.
Figure 3SEM pictures of (a) the carbon fiber cloth, (b) the pristine ZIF-67@C, (c) the ZIF-67-derived Co3O4@C, (d) the pristine ZIF-67@C at a high magnification, (e,f) ZIF-67-derived Co3O4@C at different magnifications (290 °C). (g) EDS elementary mapping results of C, Co and O in Co3O4@C.
Summary of the total specific surface areas (SBET), the sample’s pore diameters (Rpore) and the sample’s pore volumes (Vpore) of ZIF-67 and the ZIF-67-derived Co3O4.
| Samples | |||
|---|---|---|---|
| ZIF-67 | 45.18 | 0.01 | 8.11 |
| Co3O4 | 66.32 | 0.11 | 9.25 |
Figure 4(a) The XPS survey spectra. The high-resolution XPS spectra of (b) the C 1s, (c) the Co 2p and (d) the O1s elements of ZIF-67-derived Co3O4.
Figure 5Electrochemical tests of the ZIF-67-derived Co3O4@C electrode. (a) Comparative GCD curves of ZIF-67-derived Co3O4@C electrodes with different annealing temperatures. (b) At a potential window of 0–0.6 V, CV curves for various scanning rates of Co3O4@C electrode (290 °C). (c) GCD curves under different current densities at the potential window of 0–0.6 V. (d) At 5 mV, amplitude Nyquist plots in a frequency range of 0.01 Hz–100 kHz (an enlarged part of the high-frequency region is in the insert). (e) At a constant current density of 3 A/g, the cycle function is tested.
Figure 6(a) The CV curves of Co3O4@C//AC asymmetric cell at various potential windows with 50 mV/s scan rate. (b) The CV curves for various scanning rates. (c) The GCD curves for different current densities. (d) The cycling capability.
Comparison of specific capacitance and cycle times of relevant capacitor materials.
| Materials | Rate | Specific Capacitance | Capacitance Retention/Cycle | Ref. |
|---|---|---|---|---|
| ZIF-67/Co3O4@C | 1 A·g−1 | 251 F·g−1 | 90%/5000 | This work |
| Co-MOF | 0.6 A·g−1 | 206 F·g−1 | 97.5%/1000 | [ |
| Co2(OH)2C8H4O4/NF | 2 mA·cm−2 | 13.6 F·cm−2 | 79.9%/1000 | [ |
| CoMn-MOF | 5 mV·s−1 | 2.375 F·cm−2 | 85%/3000 | [ |
| CoFe-MOF | 1 A·g−1 | 319.5 F·g−1 | 93.8%/3000 | [ |
| ZIF-67/Co3O4 | 5 A·g−1 | 190 F·g−1 | 72.45%/5000 | [ |
| Co2(H2O)(C6H4O2N)4/Co3O4 | 0.625 A·g−1 | 240 F·g−1 | 96.3%/2000 | [ |
| Co-MOF/NiCo2O4 | 2.5 mA·cm−2 | 1055 mF·cm−2 | 86.7%/20000 | [ |
| ZIF-67/C | 20 mV·s−1 | 238 F·g−1 | 72%/200 | [ |
| ZIF-8@ZIF-67/NC@GC | 2 A·g−1 | 270 F·g−1 | 100%/10000 | [ |
| ZIF-L(Zn)@ZIF-67/NC@GC@CNTs | 2 A·g−1 | 252.1 F·g−1 | 91.2%/10000 | [ |
| ZIF-67/C@CNTs | 10 mV·s−1 | 343 F·g−1 | 13%/1000 | [ |
Figure 7(a) The CV curves of the Co3O4@C//AC dissymmetric cell measured at varying bending angles from 0 to 180° and (b) the corresponding diagram. Pictures of driving red LED light with two series devices after (c) 1 min and (d) 6 min.