Acta Phys. -Chim. Sin. ›› 2023, Vol. 39 ›› Issue (11): 2212042.doi: 10.3866/PKU.WHXB202212042
Special Issue: Multi-Physical Fields Driven Catalysis for Energy Conversion
• REVIEW • Previous Articles Next Articles
Yutong Wan, Fan Fang(
), Ruixue Sun, Jie Zhang, Kun Chang(
)
Received:2022-12-27
Accepted:2023-02-16
Published:2023-03-02
Contact:
Fan Fang, Kun Chang
E-mail:fangfan1990@nuaa.edu.cn;changkun@nuaa.edu.cn
Supported by:Yutong Wan, Fan Fang, Ruixue Sun, Jie Zhang, Kun Chang. Metal Oxide Semiconductors for Photothermal Catalytic CO2 Hydrogenation Reactions: Recent Progress and Perspectives[J]. Acta Phys. -Chim. Sin. 2023, 39(11), 2212042. doi: 10.3866/PKU.WHXB202212042
"
| Type | Photothermal catalysts and materials | Reaction conditions | Catalytic performance | Ref. |
| Supported catalysts | Ru/Al2O3 | 300 W Xe lamp | CH4: 18.16 mol∙h−1∙g−1 | |
| Rod-shaped Ru/Al2O3 | 1 sunsolar intensity, 250 ℃ | CH4: 135 mmol∙gRu−1 | ||
| Ru/TiO2 | 1 sun solar intensity, 150 ℃ | CH4: 1.72 mmol∙gcat−1∙h−1 | ||
| Small Pd/Nb2O5 nanorods | 300 W Xe lamp (4.2 W∙cm−2) | CO: 18.8 mol∙h−1∙gPd−1 | ||
| Pd/ZnO | Two high-pressure mercury lamps, 12 bar | CH3OH: 4.0 mmol∙g−1∙h−1 CO: 8.3 mmol∙g−1∙h−1 | ||
| Au/TiO2 | Green light irradiation, 200 ℃ | CO: 0.70 μmol∙gcat−1∙ s−1 | ||
| Ni/Al2O3 | 300 W Xe lamp | CH4: 2.30 mol∙h−1∙g−1 | ||
| Ni-Al2O3/SiO2 | LED lamp | CH4: 35 mmol g−1 h−1 | ||
| Cu/ZnO | Visible light, 1 bar | CH3OH: 2.13 μmol∙g−1∙min−1 | ||
| (Cu+, Pd)/HyWO3−x | 2 W∙cm2 illumination | CO: 0.073 mmol∙g−1∙h−1 | ||
| CoFeAl layered-double-hydroxide (LDH) | UV-Vis irradiation | C2+: 36.3% | ||
| Co7Cu1Mn1Ox | 300 W Xe lamp, 200 ℃ + | C2+: 7.5 mmol∙g−1∙h−1 | ||
| Micro-structure modulation | Ru/SiNW | Xe lamp with 3.2 suns intensity | CH4: 0.99 mmol∙g−1∙h−1 | |
| Nanostructured RuO2 on Si Photonic Crystal | High-intensity solar simulated irradiation | CH4: 4.4 mmol∙gcat−1∙h−1 | ||
| In2O3−x(OH)y/SiNW | 300 W Xe lamp, 150 ℃ | CO: 22.0 μmol∙gcat−1∙h−1 | ||
| Core-shell structured Ni12P5@SiO2 | 300 W Xe lamp | 100% CO: 135mmol∙g−1∙h−1 | ||
| Core-satellite structured Co@SiO2 | 300 W Xe lamp (1.7 W∙cm−2) | CO: 80 mmol∙gCo−1∙h−1 | ||
| Nanoporous-silica-encapsulated nickel nanocrystal (Ni@p-SiO2) | 300 W Xe lamp (2.8 W∙cm−2) | CO: 0.344 mol∙gNi−1 min−1 | ||
| Rod-like nanocrystal superstructure In2O3−x(OH)y | 130 W Xe lamp, 1 bar | 50%CH3OH: 0.06mmol∙g−1∙h−1 | ||
| ZIF-67 derived Co/Al2O3 | PLS-SXE300UV, PerfectLight | 97.7%CH4: 6036 μmol∙g−1 ∙h−1 | ||
| Metal-organic framework-derived Ga-Cu/CeO2 | 300 W Xe lamp | 100%CO: 112 mmol∙g−1∙h−1 | ||
| MIL-125(Ti)-derived defective Ni/TiO2 | Infrared (IR) light | 100%CH4: 271.9 mmol∙g Ni−1∙h−1 | ||
| Defect modulation | In2O3−x/In2O3 | Light intensity = ~20 suns | 100%CO: 1874.62 μmol∙m−2∙h−1 | |
| 2D Black In2O3−x nanosheets | 300 W Xe lamp | 100% CO: 103.21 mmol∙g−1∙h−1 | ||
| HzIn2O3−x(OH)y | Light intensity of 6 suns, 1 bar | CH3OH : 33.24%−49.23% | ||
| Ru/HxMoO3−y | Vis-NIR light irradiation, 140 ℃ | CH4: 20.8 mmol∙g−1∙h−1 | ||
| Bi2O3−x | Infrared (IR) light | 100%CO: 4.6 μmol∙g−1∙h−1 |
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