| [1] | Feng K., Ouyang M. and Lin N. (2022). Tropical cyclone-blackout-heatwave compound hazard resilience in a changing climate. Nat. Commun. 13:4421. DOI:10.1038/s41467-022-32018-4 |
| [2] | Perera A.T.D., Nik V.M., Chen D., et al. (2020). Quantifying the impacts of climate change and extreme climate events on energy systems. Nat. Energy 5:150−159. DOI:10.1038/s41560-020-0558-0 |
| [3] | Tang K., Dong K., Li J., et al. (2021). Temperature-adaptive radiative coating for all-season household thermal regulation. Science 374:1504−1509. DOI:10.1126/science.abf7136 |
| [4] | Posani M., Voney V., Odaglia P., et al. (2025). Low-carbon indoor humidity regulation via 3D-printed superhygroscopic building components. Nat. Commun. 16:425. DOI:10.1038/s41467-024-54944-1 |
| [5] | Wang Z., Hölzel 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 |
| Liu Y., Guan X. and Yang L. (2026). Toward Enhancing Building Thermal Resilience through Passive and Envelope-Integrated Strategies under Climate Extremes and Building Electrification. Energy Use 2:100053. https://doi.org/10.59717/ipj.energy-use.2026.100053 |
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Dual-pathway enhancement of building thermal resilience: passive envelope enhancement and envelope-integrated self-sustaining energy synergy