| [1] | Xu X., Feng J., Li W.-Y., et al. (2024). Azobenzene-containing polymer for solar thermal energy storage and release: Advances, challenges, and opportunities. Progress in Polymer Science 149:101782. DOI:10.1016/j.progpolymsci.2023.101782 |
| [2] | Wang Z., Holzel H., Moth-Poulsen K. (2022). Status and challenges for molecular solar thermal energy storage system based devices. Chemical Society Reviews 51:7313−7326. DOI:10.1039/d1cs00890k |
| [3] | Wang Z., Holzel H., Fernandez L., et al. (2024). Hybrid solar energy device for simultaneous electric power generation and molecular solar thermal energy storage. Joule 8:2607−2622. DOI:10.1016/j.joule.2024.06.012 |
| [4] | Dang T., Zhang Z.-Y., Li T. (2024). Visible-light-activated heteroaryl azoswitches: toward a more colorful future. Journal of the American Chemical Society 146:19609−19620. DOI:10.1021/jacs.4c03135 |
| [5] | Zhang Z., Dong D., Li T., et al. (2024). Solar azo‐switches for effective E→Z photoisomerization by sunlight. Angewandte Chemie International Edition 63:202404528. DOI:10.1002/anie.202404528 |
| Li C., Chen W., Xu X., et al. (2025). Sunlight-driven azoswitches for solar thermal energy storage and release. The Innovation Materials 3:100110. https://doi.org/10.59717/j.xinn-mater.2024.100110 |
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Molecular design and performance exploration of sunlight-driven azoswitches