| [1] | Fujishima, A. and Honda, K. (1972). Electrochemical photolysis of water at a semiconductor electrode. Nature 238: 37−38. DOI: 10.1038/238037a0. |
| [2] | Qian, Y., Han, Y., Zhang, X., et al. (2023). Computation-based regulation of excitonic effects in donor-acceptor covalent organic frameworks for enhanced photocatalysis. Nat. Commun. 14: 3083. DOI: 10.1038/s41467-023-38884-w. |
| [3] | Jeon, J.P., Kim, Y.J., Joo, S.H., et al. (2023). Benzotrithiophene‐based Covalent Organic Framework Photocatalysts with Controlled Conjugation of Building Blocks for Charge Stabilization. Angew. Chem. Int. Ed. 135: e202217416. DOI: 10.1002/ange.202217416. |
| [4] | Ren, X., Li, C., Kang, W., et al. (2022). Enormous promotion of photocatalytic activity through the use of near-single layer covalent organic frameworks. CCS Chem. 4: 2429−2439. DOI: 10.31635/ccschem.021.202101090. |
| [5] | Shen, R., Liang, G., Hao, L., et al. (2023). In situ synthesis of chemically bonded 2D/2D covalent organic frameworks/O-vacancy WO3 Z-scheme heterostructure for photocatalytic overall water splitting. Adv. Mater. 35: 2303649. DOI: 10.1002/adma.202303649. |
| Luo X., Luo J., Lin J., et al., (2024). Covalent organic frameworks for photocatalytic hydrogen production. The Innovation Materials 2(3): 100087. https://doi.org/10.59717/j.xinn-mater.2024.100087 |
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Common strategies for modulating the performance of photocatalytic hydrogen production