| [1] | Yuan, Z., Liu, Y., and Zhou, H. (2023). Chemical crosslinking enabling ferroelectric polymers for new memory applications. The Innovation Materials 1: 100025. DOI: 10.59717/j.xinn-mater.2023.100025. |
| [2] | Fu, D. W., Cai, H. L., Liu, Y., et al. (2013). Diisopropylammonium bromide is a high-temperature molecular ferroelectric crystal. Science 339: 425−428. DOI: 10.1126/science.1229675. |
| [3] | Liu, H-Y., Zhang, H-Y, Chen, X-G., et al. (2020). Molecular design principles for ferroelectrics: Ferroelectrochemistry. J. Am. Chem. Soc. 142: 15205−15218. DOI: 10.1021/jacs.0c07055. |
| [4] | Peng, H., Qi, J-C., Liu, Y-S., et al. (2024). Homochirality in ferroelectrochemistry. Chin. J. Chem. 42: 1133−1144. DOI: 10.1002/cjoc.202300640. |
| [5] | Zhang, H. Y., Tang, Y. Y., Gu, Z.X., et al. (2024). Biodegradable ferroelectric molecular crystal with large piezoelectric response. Science 383: 1492−1498. DOI: 10.1126/science.adj1946. |
| Guo W., Liu X., and Sun Z. (2024). Ferroelectrochemistry: Advancing biodegradable molecular ferroelectric towards biomedical applications. The Innovation Materials 2(2): 100075. https://doi.org/10.59717/j.xinn-mater.2024.100075 |
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The HFPD crystals exhibit favorable ferroelectric properties, while the HFPD-PVA films result in outstanding flexibility, biocompatibility, and biodegradability.