J. Mater. Sci. Technol. ›› 2022, Vol. 101: 155-164.DOI: 10.1016/j.jmst.2021.06.016
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Riguang Chenga,b, Yanxun Guana, Yumei Luoa, Chenchen Zhanga, Sheng Weia,b, Mengmeng Zhaoa, Qi Lina, Hao Lia, Shiyou Zhengc, Federico Roseid, Lixian Suna,b,**(
), Fen Xua,*(
), Hongge Pane,*(
)
Received:2021-03-30
Revised:2021-06-02
Accepted:2021-06-06
Published:2022-02-28
Online:2021-08-05
Contact:
Lixian Sun,Fen Xu,Hongge Pan
About author:honggepan@zju.edu.cn (H. Pan).Riguang Cheng, Yanxun Guan, Yumei Luo, Chenchen Zhang, Sheng Wei, Mengmeng Zhao, Qi Lin, Hao Li, Shiyou Zheng, Federico Rosei, Lixian Sun, Fen Xu, Hongge Pan. Guanine-assisted N-doped ordered mesoporous carbons as efficient capacity decaying suppression materials for lithium-sulfur batteries[J]. J. Mater. Sci. Technol., 2022, 101: 155-164.
Fig. 2. SEM images of NOMC-0 (a), NOMC-2 (b, c), NOMC-2/S (d), TEM image of NOMC-2 (e), HRTEM image of NOMC-2 (f), and elemental mapping of C, N, and S (g).
Fig. 3. Small-angle (a) and wide-angle (b) XRD patterns of NOMC-0, NOMC-1, NOMC-2, NOMC-3, NOMC-2/S and sulfur samples; N2 adsorption-desorption isotherms (c) and pore size distribution (d) of NOMC-0, NOMC-1, NOMC-2, and NOMC-3, the overall XPS spectrum of NOMC-1, NOMC-2, and NOMC-3 (e) and the N 1s spectrum of NOMC-2 (f), Raman spectra (g), and TGA plots (h) of NOMC-2/S.
| Sample | Specific surface area (m2/g) | Pore size (nm) | Pore volume (cm3/g) | ID/IGa | N (at%) |
|---|---|---|---|---|---|
| NOMC-0 | 1275 | 4.04 | 1.11 | 1.06 | 0.0 |
| NOMC-1 | 1044 | 3.56 | 1.05 | 0.98 | 4.8 |
| NOMC-2 | 1021 | 3.76 | 0.99 | 1.04 | 8.3 |
| NOMC-3 | 837 | 3.73 | 0.78 | 1.02 | 13.6 |
Table 1 NOMCs parameters of nitrogen adsorption-desorption, Raman spectroscopy and nitrogen content.
| Sample | Specific surface area (m2/g) | Pore size (nm) | Pore volume (cm3/g) | ID/IGa | N (at%) |
|---|---|---|---|---|---|
| NOMC-0 | 1275 | 4.04 | 1.11 | 1.06 | 0.0 |
| NOMC-1 | 1044 | 3.56 | 1.05 | 0.98 | 4.8 |
| NOMC-2 | 1021 | 3.76 | 0.99 | 1.04 | 8.3 |
| NOMC-3 | 837 | 3.73 | 0.78 | 1.02 | 13.6 |
Fig. 4. In situ XRD data collected at different discharge states (a) and recharge states (b), photo of the NOMC-0, NOMC-1, NOMC-2, NOMC-3, and Li2S6 samples after adsorption ability tests (c).
Fig. 5. Electrochemical performance of the NOMC-0/S, NOMC-1/S, NOMC-2/S, and NOMC-3/S cathodes, showing the rate performance at various current densities (a), the CV of NOMC-2/S at 0.1 mV s-1 (b), electrochemical impedance spectroscopy before cycling (c), and the first discharge/charge profiles at 0.1 C (d).
Fig. 6. Cycling performance at 0.1 C (a) and the cycling and Coulombic efficiency at 0.5 C (b) of the NOMC-0/S, NOMC-1/S, NOMC-2/S, and NOMC-3/S cathodes, long-term cycling performance of NOMC-0/S and NOMC-2/S at 1 C (c), and the NOMC-2/S electrode with 3.5 and 5 mg cm-2 mass loadings (d).
Fig. 7. Optical photographs of the NOMC-0/S and NOMC-2/S lithium anodes and separators (a), SEM images of the pristine lithium anode (b), lithium surface of NOMC-2/S (c), NOMC-2/S (d) electrode after 100 cycles.
| Materials | Sulfurcontent (%) | Nitrogencontent (at%) | Current density (C) | Initial discharge capacity(mAh g-1) | Cycle life | Capacity fadingrate (%/cycle) | Ref. |
|---|---|---|---|---|---|---|---|
| Melamine-derived N-doped porous carbon | 60 | 20.4 | 1 | 895 | 100 | 0.28 | [ |
| Polyurethane-derived N-doped mesoporous carbons | 75 | 7.18 | 2 | 910 | 100 | 0.44 | [ |
| Dopamine-derived N-Doped hollow carbon spheres | 62 | 1.61 | 0.5 | 838.7 | 100 | 0.39 | [ |
| Ammonia-derived N-doped nanocarbon | 65 | 1.76 | 1 | 937 | 100 | 0.31 | [ |
| Dicyandiamide N-derived doped graphene/polyaniline | 52.5 | — | 0.5 | 1227 | 100 | 0.43 | [ |
| Coffee grounds-derived O and N Co-Doped Porous Carbon | 48 | — | 0.2 | 1150 | 100 | 0.47 | [ |
| Silk Cocoon-derived N-doped Porous Carbon Nanosheets | 56 | 1.9 | 0.5 | 876 | 100 | 0.32 | [ |
| Guanine-derived N-doped ordered mesoporous carbons | 60.5 | 8.3 | 0.5 | 638.3 | 100 | 0.25 | our work |
Table 2 Comparison of electrochemical performance with different nitrogen content of Li-S batteries in this work (1 C = 1675 mAh g-1).
| Materials | Sulfurcontent (%) | Nitrogencontent (at%) | Current density (C) | Initial discharge capacity(mAh g-1) | Cycle life | Capacity fadingrate (%/cycle) | Ref. |
|---|---|---|---|---|---|---|---|
| Melamine-derived N-doped porous carbon | 60 | 20.4 | 1 | 895 | 100 | 0.28 | [ |
| Polyurethane-derived N-doped mesoporous carbons | 75 | 7.18 | 2 | 910 | 100 | 0.44 | [ |
| Dopamine-derived N-Doped hollow carbon spheres | 62 | 1.61 | 0.5 | 838.7 | 100 | 0.39 | [ |
| Ammonia-derived N-doped nanocarbon | 65 | 1.76 | 1 | 937 | 100 | 0.31 | [ |
| Dicyandiamide N-derived doped graphene/polyaniline | 52.5 | — | 0.5 | 1227 | 100 | 0.43 | [ |
| Coffee grounds-derived O and N Co-Doped Porous Carbon | 48 | — | 0.2 | 1150 | 100 | 0.47 | [ |
| Silk Cocoon-derived N-doped Porous Carbon Nanosheets | 56 | 1.9 | 0.5 | 876 | 100 | 0.32 | [ |
| Guanine-derived N-doped ordered mesoporous carbons | 60.5 | 8.3 | 0.5 | 638.3 | 100 | 0.25 | our work |
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