| Literature DB >> 35159835 |
Ismaila T Bello1,2, Kabir O Otun3,4, Gayi Nyongombe1, Oluwaseun Adedokun2, Guy L Kabongo1, Mokhotjwa S Dhlamini1.
Abstract
The fascinating features of 2D nanomaterials for various applications have prompted increasing research into single and few-layer metal dichalcogenides nanosheets using improved nanofabrication and characterization techniques. MoS2 has recently been intensively examined among layered metal dichalcogenides and other diverse transition metal-based materials, that have previously been studied in various applications. In this research, we report mixed-phase Mn-doped MoS2 nanoflowers for supercapacitor performance studies. The confirmation of the successfully prepared Mn-doped MoS2 nanoflowers was characterized by XRD, SEM-EDS, RAMAN, and BET research techniques. The mixed-phase of the as-synthesized electrode material was confirmed by the structural changes observed in the XRD and RAMAN studies. The surface area from the BET measurement was calculated to be 46.0628 m2/g, and the adsorption average pore size of the electrode material was 11.26607 nm. The electrochemical performance of the Mn-doped MoS2 electrode material showed a pseudo-capacitive behavior, with a specific capacitance of 70.37 Fg-1, and with a corresponding energy density of 3.14 Whkg-1 and a power density of 4346.35 Wkg-1. The performance of this metal-doped MoS2-based supercapacitor device can be attributed to its mixed phase, which requires further optimization in future works.Entities:
Keywords: Mn-doped MoS2 nanoflowers; electrode materials; energy density; power density; specific capacitance; supercapacitors
Year: 2022 PMID: 35159835 PMCID: PMC8839322 DOI: 10.3390/nano12030490
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1(a,b): SEM and EDS spectra of the Mn-doped MoS2 electrode material.
Figure 2(a–f): Elemental mapping of the Mn-doped MoS2 electrode material.
Quantitative composition of the elements presents in the Mn-doped MoS2.
| Element Line | Weight % | Norm. Wt.% | Atom % | Formula | Compnd % | Norm. Compnd. % |
|---|---|---|---|---|---|---|
|
| 26.7 | 26.7 | 57.3 | C | 26.7 | 26.7 |
|
| 16.5 | 16.5 | 26.4 | O | 16.5 | 16.5 |
|
| 5.4 | 5.4 | 2.5 | Mn | 5.4 | 5.4 |
|
| 51.4 | 51.4 | 13.8 | Mo | 51.4 | 51.4 |
|
| 100.0 | 100.0 | 100.0 | 100.0 | 100.0 |
Figure 3(a,b): Raman and XRD patterns of the Mn-doped MoS2 electrode material. The (#) corresponds to the Mn2O3 planes of the XRD patterns.
Figure 4(a) N2 adsorption–desorption isotherms of Mn-doped MoS2, with an inset of its pore size distributions, and (b) Nyquist plots (inset lower frequency and equivalent circuit).
Figure 5(a,b): CV and GCD curves of the Mn-doped MoS2 Electrode Material.
Performance Parameters of the Galvanostatic Charge–Discharge.
| Current Density | Specific Capacitance | Energy Density | Power Density(W/kg) |
|---|---|---|---|
| 1 | 70.37 | 2.07 | 257.14 |
| 2 | 58.89 | 2.29 | 529.69 |
| 3 | 57.69 | 2.31 | 805.85 |
| 5 | 44.11 | 2.58 | 1454.52 |
| 10 | 29.90 | 3.14 | 4346.35 |
Figure 6(a) Peak current against the square root of scan rate, and (b) specific capacitance comparison with current density.