City University of Hong Kong
City University of Hong Kong City University of Hong Kong

Resources

Poster

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Publications

2025

Chen, S., Lin, K., Liu, S., Kwok, C. T., Liang, L., Li, Z., Wu, S., Liu, Z., Wang, C., Pan, A., Chen, J., Ho, T. C., Chopra, S. S., Zhu, Y., Sun, Q., Li, W., Lin, B., & Tso, C. Y. (2025). Bioinspired metafilms for all-weather energy harvesting: Adaptive thermal regulation and raindrop electricity generation. Science Advances, 11(21), eadu2895. https://doi.org/10.1126/sciadv.adu2895

Fu, Y., Ma, X., Zhang, X.-W., Li, Z., Wang, C., Lin, K., Zhou, Y., Pan, A., Chen, X., Li, X., Wang, W., Kwok, C. T., Zhu, Y.-H., Xue, X., Zhao, X., Rogach, A. L., Li, L., Li, W., & Tso, C. Y. (2025). Photoluminescent radiative cooling for aesthetic and urban comfort. Nature Sustainability. https://doi.org/10.1038/s41893-025-01657-y

Jiang, W., Qu, G., Huang, X., Chen, X., Chi, L., Wang, T., Wong, C.-T., Lin, F. R., Yang, C., Jiang, Q., Wu, S., Zhang, J., & Jen, A. K. Y. (2025). Toughened self-assembled monolayers for durable perovskite solar cells. Nature. https://doi.org/10.1038/s41586-025-09509-7

2024

Chen, J., Guo, R., Zhao, W., Chen, M., Hu, J., Wang, X., Wu, F., & Guo, H. (2024). A highly efficient self-powered variable impedance system. Nano Energy, 128, 109942. https://doi.org/10.1016/j.nanoen.2024.109942

Lin, K., Chen, J., Pan, A., Li, H., Fu, Y., Kwok, C. T., Liang, L., Chao, L., Zhu, Y., Sun, Q., & Tso, C. Y. (2024). Beyond the static: Dynamic radiative cooling materials and applications. Materials Today Energy, 44, 101647. https://doi.org/10.1016/j.mtener.2024.101647

Mou, J.-H., Qin, Z.-H., Chen, S. S., Leu, S.-Y., Tsang, D. C. W., Lam, J. C.-H., Zhao, J., Yuan, Z., Xu, C., & Lin, C. S. K. (2024). Key techno-economic barriers in the valorization of organic solid wastes for chemical production. One Earth, 7(5), 742–746. https://doi.org/10.1016/j.oneear.2024.04.017

Qin, Z.-H., Fridrihsone, A., Dong, L., Mou, J.-H., Miao, Y., Zhang, L., Xu, C., Kirpluks, M., & Lin, C. S. K. (2024). Environmental benefits of valorising food waste into bio-based polyols for the production of polyurethane rigid foams. Sustainable Production and Consumption, 51, 572-583. https://doi.org/10.1016/j.spc.2024.09.029

Qin, Z.-H., Fridrihsone, A., Mou, J.-H., Pomilovskis, R., Godina, D., Miao, Y., Liu, Z., Tsang, C.-W., Zhang, L., Xu, C., Chopra, S. S., Kaulina, E., Kirpluks, M., & Lin, C. S. K. (2024). Valorisation of food waste into bio-based polyurethane rigid foams: From experimental investigation to techno-economic analysis. Chemical Engineering Journal, 493, 152680. https://doi.org/10.1016/j.cej.2024.152680

Wu, S., Yan, Y., Yin, J., Jiang, K., Li, F., Zeng, Z., Tsang, S.-W., & Jen, A. K. Y. (2024). Redox mediator-stabilized wide-bandgap perovskites for monolithic perovskite-organic tandem solar cells. Nature Energy, 9(4), 411–421. https://doi.org/10.1038/s41560-024-01451-8

Zhang, X., Wu, S., Zhang, H., Jen, A. K. Y., Zhan, Y., & Chu, J. (2024). Advances in inverted perovskite solar cells. Nature Photonics, 18(12), 1243–1253. https://doi.org/10.1038/s41566-024-01541-9

2023

Lin, K., Chen, S., Zeng, Y., Ho, T. C., Zhu, Y., Wang, X., Liu, F., Huang, B., Chao, C. Y.-H., Wang, Z., & Tso, C. Y. (2023). Hierarchically structured passive radiative cooling ceramic with high solar reflectivity. Science, 382(6671), 691–697. https://doi.org/10.1126/science.adi4725

Sun, S.-Q., Xu, X., Sun, Q., Yao, Q., Cai, Y., Li, X.-Y., Xu, Y.-L., He, W., Zhu, M., Lv, X., Lin, F. R., Jen, A. K. Y., Shi, T., Yip, H.-L., Fung, M.-K., & Xie, Y.-M. (2023). All-Inorganic perovskite-based monolithic perovskite/organic tandem solar cells with 23.21% efficiency by dual-interface engineering. Advanced Energy Materials, 13(16), 2204347. https://doi.org/10.1002/aenm.202204347

*Last updated: 24 Dec 2025