| Literature DB >> 26846311 |
Jialiang Tang1, Vinodkumar Etacheri, Vilas G Pol1.
Abstract
The conversion of allergic pollen grains into carbon microstructures was carried out through a facile, one-step, solid-state pyrolysis process in an inert atmosphere. The as-preparedEntities:
Mesh:
Substances:
Year: 2016 PMID: 26846311 PMCID: PMC4742870 DOI: 10.1038/srep20290
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Preparation of pollen derived carbon microstructure via solid state pyrolysis of two distinct pollen sources.
Figure 2Characterization of pollen derived carbons.
SEM images of (a) ABP and (b) ACP; (c) TEM images of ACP; (d) XRD and (e) Raman patterns of ABP and ACP; (f) XPS spectra of ground ABP and ACP samples.
XPS elemental composition comparison of pollen carbons.
| Samples | C | O | N | P | Ca | K |
|---|---|---|---|---|---|---|
| 84.08 | 10.81 | 2.74 | 1.31 | 0.73 | 0.44 | |
| 83.18 | 12.14 | 3.20 | 0.82 | 0.12 | 0.55 |
Figure 3Electrochemical analysis of ACP vs Li half-cells.
(a) Voltage profiles from 0 to 3 V at C/10 rate for both 50 °C and 25 °C cells; (b) corresponding dQ/dV plots, inset is the enlarged charge plots; (c) capacity as a function of cycle number at C/10 rate; (d) rate studies of ACP vs Li at room and elevated temperatures.
Figure 4(a) Rate studies of ABP half-cells from 0 to 3 V at both 50 °C and 25 °C; (b) comparison of all rate studies of ACP and ABP cells.
Surface characterization of pollen carbons vs. 1st cycle irreversible capacity loss.
| Samples | BET Surface Area (m2/g) | DFT Pore Diameter (Mode) (nm) | 1st cycle irreversible (mAh/g) | |
|---|---|---|---|---|
| Room Temp. | High Temp. | |||
| 303.9 | 1.543 | 614.9 | 590.2 | |
| 237.6 | 1.475 | 556.7 | 582.9 | |
Figure 5SEI and charge transfer resistances at 0.5 V discharges as a function of cycles.
The inset shows the equivalent circuit used to model the EIS data.