物理化学学报 >> 2025, Vol. 41 >> Issue (7): 100071.doi: 10.1016/j.actphy.2025.100071
所属专题: 光催化中的S型异质结
刘方璇1, 刘子妍1, 周国伟1,*(
), 高婷婷1, 刘文宇3, 孙彬1,2,*(
)
收稿日期:2025-01-25
修回日期:2025-02-19
录用日期:2025-02-24
发布日期:2025-05-22
通讯作者:
Email: gwzhou@qlu.edu.cn (周国伟)binsun@qlu.edu.cn (孙彬)
基金资助:
Fangxuan Liu1, Ziyan Liu1, Guowei Zhou1,*(
), Tingting Gao1, Wenyu Liu3, Bin Sun1,2,*(
)
Received:2025-01-25
Revised:2025-02-19
Accepted:2025-02-24
Published:2025-05-22
Contact:
Email: gwzhou@qlu.edu.cn (Guowei Zhou)binsun@qlu.edu.cn (Bin Sun)
Supported by:摘要:
利用太阳能驱动的光催化技术,有望成为缓解环境和能源压力的可行策略。因此,光催化性能的优异与否取决于光催化剂的合理设计。通过考虑形貌调控、带隙工程、助催化剂修饰以及异质结构建等因素,可以开发出性能优异的光催化剂。基于中空结构光催化剂独特特性的启发,具有中空结构的光催化剂在光催化剂设计中赋予了诸多优势,包括增强光的多重折射和反射、缩短光生载流子的传输距离以及提供丰富的表面反应位点。在此,我们系统地回顾了中空结构光催化剂的最新研究进展,并总结了其几何形貌、内部结构和化学成分的多样性。具体而言,我们重点介绍了中空结构光催化剂的合成策略,包括硬模板法、软模板法和无模板法。此外,还详细总结了一系列中空结构光催化剂,如金属氧化物、金属硫化物、金属有机框架和共价有机框架等。随后,我们概述了中空结构光催化剂在光催化污染物降解、H2生成、H2O2生成、CO2还原和N2固定等领域的潜在应用。同时,深入探讨了中空结构与光催化性能之间的内在关系。最后,我们分析了中空结构光催化剂未来发展方向中的挑战和前景。该综述为更好地设计中空结构光催化剂以满足环境修复和能源转换需求提供了启示。
刘方璇, 刘子妍, 周国伟, 高婷婷, 刘文宇, 孙彬. 中空结构光催化剂[J]. 物理化学学报, 2025, 41(7), 100071. doi: 10.1016/j.actphy.2025.100071
Fangxuan Liu, Ziyan Liu, Guowei Zhou, Tingting Gao, Wenyu Liu, Bin Sun. Hollow structured photocatalysts[J]. Acta Phys. -Chim. Sin. 2025, 41(7), 100071. doi: 10.1016/j.actphy.2025.100071
表1
"
| Material | Structure | Method | Specific surface area/(m2∙g−1) | Ref. |
| NG/CdS | Single-shell hollow sphere | SiO2 hard template | 27.00 | [ |
| α-Fe2O3 | Triple-shell hollow sphere | SiO2 hard template | 92.00 | [ |
| Ni-ZnO@C | Core-double-shell hollow sphere | Carbon sphere hard template | 23.01 | [ |
| NiCo2O4 | Double-shell hollow sphere | Carbon sphere hard template | 93.50 | [ |
| ZnO@Co3O4 | Single-shell hollow cube | ZIF template | 51.90 | [ |
| ZIF-8 | Single-shell hollow sphere | Microemulsion template | 1325.00 | [ |
| Ce1−xCuxO2 | Single-shell hollow sphere | Microemulsion template | 127.40 | [ |
| Cu2O | Single-shell hollow sphere | Supramolecular micelles template | 22.60 | [ |
| ZIF-8 | Single-shell hollow sphere | Supramolecular micelles template | 1195.00 | [ |
| UiO-66(Ce) | Single-shell hollow hexagon | Supramolecular micelles template | 1061.00 | [ |
| TiO2 | Single-shell hollow sphere | Gas bubble template | 297.00 | [ |
| Fe2(MoO4)3 | Single-shell hollow sphere | Gas bubble template | 24.00 | [ |
| Cu-Zn DA/HNC | Single-shell hollow lozenge | Kirkendall effect | 744.00 | [ |
| ZnO | Single-shell hollow sphere | Ostwald ripening | 16.00 | [ |
| OMHS-COF-H | Single-shell hollow sphere | Ostwald ripening | 193.35 | [ |
| Fe3O4@HMCCS | Single-shell hollow sphere | Spray drying | 294.00 | [ |
| Cr2O3 | Triple-shell hollow sphere | Spray drying | 56.90 | [ |
| NiCoMn-S | Single-shell hollow rod | Ion exchange | 94.90 | [ |
| CoMn-PBA | Single-shell hollow sphere | Ion exchange | 89.80 | [ |
| TiO2 | Single-shell hollow sphere | Chemically induced self-transformation | 15.30 | [ |
| NiO | Triple-shell hollow sphere | Self-assembly | 51.60 | [ |
| CeO2 | Single-shell hollow sphere | SiO2 hard template | 78.00 | [ |
| NC/Pt/TiO2 | Single-shell hollow sphere | SiO2 hard template | 73.80 | [ |
| TiO2-x | Single-shell hollow sphere | Carbon sphere hard template | 64.28 | [ |
| CdS/NiS | Single-shell hollow sphere | SiO2 hard template | 303.10 | [ |
| Cu2−xS@ZnxCd1−xS | Single-shell hollow nanobox | Ion exchange | 18.65 | [ |
| CuMn2O4 | Single-shell hollow sphere | Self-assembly | 15.00 | [ |
| ZnS/CoS2 | Five-shell hollow sphere | Self-assembly | 121.60 | [ |
| OCN@In2S3 | Single-shell hollow sphere | Self-assembly | 83.78 | [ |
| P-NC@CNHS | Single-shell hollow sphere | MCM-41 template | 92.00 | [ |
| TB-COF | Single-shell hollow sphere | Self-assembly | 818.00 | [ |
| MnIn2S4@In2S3 | Single-shell hollow nanotube | MOF template | 215.30 | [ |
| ZnCdS | Single-shell hollow nanocage | ZIF template | 178.58 | [ |
| In2O3/PDA | Single-shell hollow tube | MIL-68 template | 42.00 | [ |
| Ag-CdS1−x@ZnIn2S4−x | Single-shell hollow nanobox | vulcanization | 41.60 | [ |
| C-NiO | Single-shell hollow sphere | Carbon sphere hard template | 131.79 | [ |
| CdS | Single-shell hollow sphere | SiO2 hard template | 65.00 | [ |
| Mn, C-ZnO | Core-triple shell hollow spheres | Self-assembly | 15.00 | [ |
| P-CoSx/ZnS | Single-shell hollow dodecahedron | MOF template | 42.40 | [ |
| Au/ZnO | Single-shell hollow sphere | Sodium citrate-assisted alkali precipitation | 13.10 | [ |
| N-TiO2 | Single-shell hollow sphere | Phenolic resin hard template | 124.44 | [ |
表2
"
| Hollow photocatalyst | Application | Degradation efficiency | Ref. |
| TiO2 | Tetracycline | 98.2%/60 min | [ |
| Cu2O | Methyl orange | 95.8%/240 min | [ |
| NiO | Bisphenol A | 100.0%/60 min | [ |
| CeO2 | Tetracycline | 100.0%/50 min | [ |
| TiO2−x | Methylene blue | 92.5%/420 min | [ |
| Au/ZnO | Rhodamine B | 73.0%/20 min | [ |
| MoS2/PANI/PAN@BiFeO3 | Tetracycline Methyl orange | 99.5%/60 min 99.9%/60 min | [ |
| Au-FePO4 mYSNCs | Methylene blue Tetracycline | 99.0%/50 min 95.0%/100 min | [ |
表3
"
| Hollow photocatalyst | Sacrificial agent | H2 production rate/(mmol∙g−1∙h–1) | AQY | Ref. |
| UiO-66(Ce) | TEOA | 0.36 | − | [ |
| NC/Pt/TiO2 | Methanol | 25.70 | 13.20% (365 nm) | [ |
| CeO2/ZnxCd1−xIn2S4 | Na2SO3, Na2S | 4.09 | 9.50% (400 nm) | [ |
| VO, Zn-ZnO/ZnS | Na2SO3, Na2S | 160.91 | 15.40% (365 nm) | [ |
| CdS/NiS | Na2SO3, Na2S | 2.18 | − | [ |
| Cu2−xS@ZnxCd1−xS | Na2SO3, Na2S | 8.17 | 10.20% (420 nm) | [ |
| CdS | Na2SO3, Na2S | 3.42 | 28.90% (450 nm) | [ |
| CuMn2O4 | TEOA | 1.59 | − | [ |
| Ni-ZnO@C/g-C3N4 | TEOA | 0.34 | − | [ |
| ZnS/CoS2 | Na2SO3, Na2S | 8.00 | 54.60% (290 nm) | [ |
表4
"
| Hollow photocatalyst | Reaction system | Yield | AQY/(420 nm) | Ref. |
| OCN@In2S3 | Ethanol | 0.63 (mmol∙g−1∙h−1) | – | [ |
| P-NC@CNHS | Isopropanol | 4.57 (mmol∙g−1∙h−1) | – | [ |
| TB-COF | Ethanol | 6.07 (mmol∙g−1∙h−1) | 7.83% | [ |
| MnIn2S4@In2S3 | Ethanol | 2.57 (mmol∙g−1∙h−1) | 10.52% | [ |
| ZnCdS@PDA | H2O | 45.50 (mmol∙g−1∙h−1) | 0.89% | [ |
| In2O3/PDA | Ethanol | 0.37 (mmol∙g−1∙h−1) | – | [ |
| Ag-CdS1−x@ZnIn2S4−x | Ethanol | 1.18 (mmol∙g−1∙h−1) | – | [ |
| g-C3N4 | Ethanol | 1.58 (mmol∙g−1∙h−1) | 28.10% | [ |
| CdS/RF | Ethanol | 0.80 (mmol∙g−1∙h−1) | – | [ |
表5
"
| Hollow photocatalyst | Reaction system | Reduction product | Yield/(µmol∙g−1∙h−1) | AQY | Ref. |
| NG/CdS | H2SO4/NaHCO3 | CO, CH4 | 2.59, 0.33 | 0.90% (420 nm) | [ |
| OMHS-COF-H | TIPA | CO, H2 | 15874.00, 1298.00 | 1.01% (420 nm) | [ |
| C-NiO | H2O/TEOA | CO, CH4 | 6.64, 3.77 | – | [ |
| ZnxCd1−xS-Co | H2O/acetonitrile/TEOA | CO | 7629.70 | – | [ |
| CdS | H2O | CO, CH4, CH3 | 4.59, 0.19, 2.22 | – | [ |
| Mn, C-ZnO | – | CO, O2 | 0.54, 0.46 | 0.03% (365 nm) | [ |
| CeO2@CeO2/A-TiO2 | TEOA | CO, CH4 | 97.63, 15.00 | – | [ |
| CuxO/CeO2 | Ethanol/H2O | CO, CH4 | 124.90, 9.10 | – | [ |
表6
"
| Hollow photocatalyst | Reaction system | Yield | AQY | Ref. |
| P-CoSx/ZnS | H2O | 1175.37 μmol∙g−1∙h−1 | 7.56% (365nm) | [ |
| BiOBr/Bi4O5Br2 | H2O | 66.87 μmol∙g−1∙h−1 | 0.15% (365nm) | [ |
| Au-Ag2O | H2O | 28.20 mg∙m−2∙h−1 | 1.20% (685nm) | [ |
| InVO4 | H2O | 66.18 µmol∙g−1∙h−1 | 0.50% (385nm) | [ |
| N-TiO2 | H2O | 80.09 μmol∙g−1∙h−1 | 0.07% (375nm) | [ |
| Yb3+: Tm3+: CeF3 | H2O | 15.06 μmol∙g−1∙h−1 (NH4+) | – | [ |
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