J. Mater. Sci. Technol. ›› 2019, Vol. 35 ›› Issue (10): 2288-2296.DOI: 10.1016/j.jmst.2019.05.057
• Orginal Article • Previous Articles Next Articles
Er-Xun Hana, Yuan-Yuan Lia, Qi-Hao Wanga, Wei-Qing Huanga*(), Leng Luoa, Wangyu Hub, Gui-Fang Huanga*(
)
Received:
2019-04-15
Revised:
2019-05-15
Accepted:
2019-05-23
Online:
2019-10-05
Published:
2019-08-28
Contact:
Huang Wei-Qing,Huang Gui-Fang
Er-Xun Han, Yuan-Yuan Li, Qi-Hao Wang, Wei-Qing Huang, Leng Luo, Wangyu Hu, Gui-Fang Huang. Chlorine doped graphitic carbon nitride nanorings as an efficient photoresponsive catalyst for water oxidation and organic decomposition[J]. J. Mater. Sci. Technol., 2019, 35(10): 2288-2296.
Fig. 1. (a) FTIR spectrum of precursors (a: melamine, b: cyanuric chloride, c: CM-80 and d: CM-100), (b) products (Ⅰ: bulk CN, Ⅱ: CN-Cl80 and Ⅲ: CN-Cl100) and (c) XRD graphs for CN-Clx and bulk CN.
Fig. 4. (a) UV-vis diffuse reflectance spectra (inset: Tauc plots for estimating the band gap (Eg) values) and (b) the room-temperature PL spectra of bulk CN and CN-Clx (x = 80, 100 and 120).
Catalyst | Electrolyte | Onset Potential (V vs. RHE) | Overpotential (mV) | Tafel slope (mV dec-1) | Reference |
---|---|---|---|---|---|
CN | 0.1 M KOH | 1.70 | 720 | 384.1 | [ |
CN@C | 0.1 M KOH | 1.40 | _ | 254.2 | [ |
SH-g-C3N4 | 0.5 M KOH | 1.47 | 340 | 128 | [ |
63.6(in light) | |||||
Cl-doped g-C3N4 | 1.0 M KOH | 1.47 | 290 | 83 | This work |
55(in light) | |||||
CoO@Co-NC/KB | 1.0 M KOH | _ | 266 | 72 | [ |
Co@NCNT HMS | 1.0 M KOH | _ | 317 | 79 | [ |
GCNTs | 1.0 M KOH | 1.50 | 360 | 55 | [ |
BCN | 1.0 M KOH | 1.62 | 416 | 70 | [ |
Ni@g-C3N4 CNT | 1.0 M KOH | 1.50 | 326 | 67 | [ |
O-N-CNs | 1.0 M KOH | _ | 381 | 442 | [ |
Ni-CN-200 | 1.0 M KOH | 1.54 | _ | 60 | [ |
Table 1 Comparison on catalytic activities of as-obtained CN-Cl100 and related samples in the literature.
Catalyst | Electrolyte | Onset Potential (V vs. RHE) | Overpotential (mV) | Tafel slope (mV dec-1) | Reference |
---|---|---|---|---|---|
CN | 0.1 M KOH | 1.70 | 720 | 384.1 | [ |
CN@C | 0.1 M KOH | 1.40 | _ | 254.2 | [ |
SH-g-C3N4 | 0.5 M KOH | 1.47 | 340 | 128 | [ |
63.6(in light) | |||||
Cl-doped g-C3N4 | 1.0 M KOH | 1.47 | 290 | 83 | This work |
55(in light) | |||||
CoO@Co-NC/KB | 1.0 M KOH | _ | 266 | 72 | [ |
Co@NCNT HMS | 1.0 M KOH | _ | 317 | 79 | [ |
GCNTs | 1.0 M KOH | 1.50 | 360 | 55 | [ |
BCN | 1.0 M KOH | 1.62 | 416 | 70 | [ |
Ni@g-C3N4 CNT | 1.0 M KOH | 1.50 | 326 | 67 | [ |
O-N-CNs | 1.0 M KOH | _ | 381 | 442 | [ |
Ni-CN-200 | 1.0 M KOH | 1.54 | _ | 60 | [ |
Fig. 6. (a) OER comparision of CN (in ethyl alcohol), bulk CN and CN-Cl100 and (b) current-time chronoamperometric responses of CN-Cl100 in dark or under visible light irradiation.
Fig. 7. (a) Photocatalytic degradation rate of RhB under visible light irradiation in the presence of photocatalysts and (b) first-order plots for the photogradation of RhB over CN-Cl100 and bulk CN photocatalysts.
Fig. 8. (a) Transient photocurrent response, (b) EIS changes of bulk CN and CN-Clx, (c) Mott-Schottky plots of bulk CN and CN-Clx and (d) band structure of bulk CN and CN-Clx.
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