Chinese Journal of Catalysis ›› 2026, Vol. 89: 310-325.DOI: 10.1016/S1872-2067(26)65179-0
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Sangeeta Adhikaria,b,c,1, Sandip Mandald,e,1, Do-Heyoung Kima,f,*
Received:2026-01-18
Accepted:2026-04-16
Online:2026-10-18
Published:2026-09-01
Contact:
*E-mail: email-kdhh@chonnam.ac.kr (D.-H. Kim).
About author:1 Contributed equally to this work.
Sangeeta Adhikari, Sandip Mandal, Do-Heyoung Kim. Multispectral solar-driven detoxification by S-scheme Ag2S/Co1-xS@Co9S8@C nanocatalyst of emerging persistent organic pollutant-levofloxacin[J]. Chinese Journal of Catalysis, 2026, 89: 310-325.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65179-0
Fig. 1. (a) Schematic synthesis process of the A-CCC nanocatalysts. HRSEM images of Co1-xS@Co9S8@C (b) and 5% Ag2S/Co1-xS@Co9S8@C (c,d) nanocatalysts.
Fig. 2. TEM, HR-TEM, and elemental mapping of Co1-xS@Co9S8@C (a-c) and 5 wt% Ag2S/Co1-xS@Co9S8@C (d-f). (g) XRD patterns of the synthesized nanocatalysts. Raman spectra (h) and FTIR spectra (i) of CCC, Ag2S, and 5A-CCC nanocatalysts.
Fig. 3. High-resolution XPS profiles of Co 2p (a), S 2p (b), and Ag 3d (c) in CCC, Ag2S, and 5A-CCC. (d) UV-vis spectra of the powdered nanocatalysts. (e) Tauc plots of Ag2S nanocatalysts. (f) PL spectra of the powdered nanocatalysts. (g) Photocurrent response of CCC, Ag2S, and 5A-CCC nanocatalyst electrodes with 10 s light on/o? intervals. (h) EIS spectra of CCC, Ag2S, and 5A-CCC nanocatalyst electrodes. (i) LSV spectra of CCC and 5A-CCC nanocatalyst electrodes.
Fig. 4. NIR thermal images of the CCC, Ag2S, and 5A-CCC nanocatalysts at different NIR illumination durations. CCC(a-e), Ag2S (f-j) and 5A-CCC (k-o). All images were captured by an infrared thermal imager
Fig. 5. (a,b) UPS spectra of CCC and Ag2S nanocatalyst. (c) Band structure configuration, IEF formation, and proposed S-scheme charge transfer mechanism at the 5A-CCC nanocatalyst heterojunction.
Fig. 6. Photocatalytic experiments under the irradiation of UV (a), Visible + NIR (b), NIR light (c), and full solar spectrum (simulated solar light) (d). (e) Degradation percentages under different light conditions. (f) Rate constants for CCC, Ag2S, and 5A-CCC nanocatalysts. (g) LCN degradation with varying 5A-CCC nanocatalysts amounts. (h) LCN degradation time vs. LCN concentration. (i) LCN degradation efficiency with effect of co-existing ions using 5A-CCC nanocatalysts under simulated solar light (error bars represent in Figs. 6(a)-(d) and 6(g)-(h), the standard deviation (SD ≤ ±2%) of three independent experiments under same conditions).
| Catalyst | Adsorption (%) | Photooxidation efficiency (%) | k in 30 min (min-1) | R2 |
|---|---|---|---|---|
| LCN = 20 ppm, catalyst = 20 mg, and reaction time = 40 min | ||||
| CCC | 8 | 46.0 | 0.00377 | 0.99 |
| Ag2S | 2 | 13.3 | 8.41E-4 | 0.99 |
| 2A-CCC | 15 | 66.0 | 0.0054 | 0.97 |
| 5A-CCC | 17 | 99.7 | 0.0326 | 0.98 |
| 10A-CCC | 16 | 73.0 | 0.0121 | 0.97 |
Table 1 Photodegradation efficiencies and kinetics for LCN over different nanocatalysts under simulated solar irradiation.
| Catalyst | Adsorption (%) | Photooxidation efficiency (%) | k in 30 min (min-1) | R2 |
|---|---|---|---|---|
| LCN = 20 ppm, catalyst = 20 mg, and reaction time = 40 min | ||||
| CCC | 8 | 46.0 | 0.00377 | 0.99 |
| Ag2S | 2 | 13.3 | 8.41E-4 | 0.99 |
| 2A-CCC | 15 | 66.0 | 0.0054 | 0.97 |
| 5A-CCC | 17 | 99.7 | 0.0326 | 0.98 |
| 10A-CCC | 16 | 73.0 | 0.0121 | 0.97 |
Fig. 7. (a) Cyclic photocatalytic LCN degradation by 5A-CCC nanocatalyst. Characterizations of spent 5A-CCC nanocatalyst after 7 consecutive cyclic experiments: (b) XRD pattern before and after catalysis action. High-resolution XPS of Co 2p (c), Ag 3d (d), and S 2p (e) from spent 5A-CCC nanocatalyst. (f) HRSEM micrograph of spent 5A-CCC nanocatalyst. (g) High-resolution TEM images of spent 5A-CCC nanocatalyst. (h) EDAX spectra obtained from HRTEM micrographs for spent 5A-CCC nanocatalyst after seven consecutives cycles.
Fig. 8. (a) Scavenger studies. (b) NBT concentration versus nanocatalyst. (c) PL spectra of 2HTA using CCC, Ag2S, and 5A-CCC nanocatalysts. (d) S-scheme charge transfer mechanism. (e) PRF comparison of the prepared nanocatalysts with reported catalysts from Table 2. (f) Radar plot includes catalyst concentration, pollutant concentration, degradation efficiency, reaction time, light source and PRF for nanocatalysts from Table 2 (A: CoWO4/Bi4O5I2; B: CaTiO3@Ag@ZnO; C: Bi2MoO6-SOVs/ZnCdS; D: Bi5O7I/Bi2O2CO3/Ag2CO3; E: B doped BiVO4/Bi; and F: 5A-CCC). (g) Schematic representation of Photocatalytic-Photothermal synergy in 5A-CCC nanocatalyst. (error bars represent in Fig. 8(a), the standard deviation (SD ≤ ±2%) of three independent experiments under same conditions).
| Catalyst | Cat. conc. (g L-1) | Pollutant conc. (mg L-1) | Degradation efficiency (%) | Reaction time (adsorption + photocatalysis in min) | Light source | PRF (mg W-1 min-1 L-1) | Ref. |
|---|---|---|---|---|---|---|---|
| CoWO4/Bi4O5I2 | 0.5 | 5 | 86.3 | 40 | 300 W Xe-lamp | 0.0071 | [ |
| CaTiO3@Ag@ZnO | 1 | 10 | 90 | 100 | 55 W Xe-lamp | 0.0163 | [ |
| Bi2MoO6-SOVs/ZnCdS | 0.625 | 20 | 95.9 | 30 | 300 W Xe-lamp | 0.0106 | [ |
| Bi5O7I/Bi2O2CO3/Ag2CO3 | 0.5 | 10 | 86.9 | 60 | 300 W Xe-lamp | 0.0048 | [ |
| B doped BiVO4/Bi | 0.2 | 30 | 61.09 | 70 | 300 W Xe-lamp | 0.00290 | [ |
| 5A-CCC | 1 | 20 | 99.7 | 40 | 150 W Xe-lamp | 0.016 | This work |
Table 2 PRF values of different nanocatalysts used in photocatalytic LCN degradation in a wastewater system.
| Catalyst | Cat. conc. (g L-1) | Pollutant conc. (mg L-1) | Degradation efficiency (%) | Reaction time (adsorption + photocatalysis in min) | Light source | PRF (mg W-1 min-1 L-1) | Ref. |
|---|---|---|---|---|---|---|---|
| CoWO4/Bi4O5I2 | 0.5 | 5 | 86.3 | 40 | 300 W Xe-lamp | 0.0071 | [ |
| CaTiO3@Ag@ZnO | 1 | 10 | 90 | 100 | 55 W Xe-lamp | 0.0163 | [ |
| Bi2MoO6-SOVs/ZnCdS | 0.625 | 20 | 95.9 | 30 | 300 W Xe-lamp | 0.0106 | [ |
| Bi5O7I/Bi2O2CO3/Ag2CO3 | 0.5 | 10 | 86.9 | 60 | 300 W Xe-lamp | 0.0048 | [ |
| B doped BiVO4/Bi | 0.2 | 30 | 61.09 | 70 | 300 W Xe-lamp | 0.00290 | [ |
| 5A-CCC | 1 | 20 | 99.7 | 40 | 150 W Xe-lamp | 0.016 | This work |
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