Progress in Stimulus-Responsive Dendritic Gels※
Received date: 2022-08-19
Online published: 2022-09-14
Supported by
National Natural Science Foundation of China(21871270); National Natural Science Foundation of China(21472192); Doctor Research Fund of Shanxi Datong University(2019-B-01); Science Foundation of Shanxi Datong University(2020YGZX011); Open Research Fund of Key Laboratory of Marine Materials and Related Technologies, CAS(2021K02)
In recent years, stimulus-responsive supramolecular gels, as a class of smart soft matter materials, have shown very promising applications in the fields of ion recognition materials, self-healing materials, biomaterials and drug release, and have attracted increasing attentions. Dendrimers and dendrons are highly branched macromolecules with well-defined molecular architecture and have been widely used as building blocks in the self-assembling of supramolecular gel-phase materials. The unique dendritic architectures make the dendritic molecules as ideal candidates to be modified with various different functional moieties to develop multiple functional soft materials, which ensure each functionality to work independently without interfering. This characteristic makes them show unique advantages in the construction of stimuli- responsive gels, especially multiple stimuli-responsive gels. The research progress of stimuli-responsive dendritic gels is summarized in detail from the aspects of dendritic gel design, gel-formation mechanism, response performance and response mechanism. Based on the different stimulus, the stimulus-responsive dendritic gels are classfied into the following categories: light-responsive dendritic gel, redox-responsive dendritic gel, ion-responsive dendritic gel, thixotropic-responsive dendritic gel and multiple-responsive dendritic gel. In addition, the current challenges and perspectives on stimulus-responsive dendritic gels are also discussed.
Key words: supramolecular gels; dendrimer; stimuli-responsive; smart materials; progress
Zhixiong Liu , Qingkai Chu , Yu Feng . Progress in Stimulus-Responsive Dendritic Gels※[J]. Acta Chimica Sinica, 2022 , 80(10) : 1424 -1435 . DOI: 10.6023/A22080363
[1] | Molecular Gels: Materials with Self-Assembled Fibrillar Networks, Eds.: Weiss, R. G.; Terech, P., Springer, Amsterdam, 2006. |
[2] | Functional Molecular Gels, Eds.: Escuder, B.; Miravet, J. F., The Royal Society of Chemistry, 2014. |
[3] | Terech, P.; Weiss, R. G. Chem. Rev. 1997, 97, 3133. |
[4] | Piepenbrock, M. O. M.; Lloyd, G. O.; Clarke, N.; Steed, J. W. Chem. Rev. 2010, 110, 1960. |
[5] | Liu, M. H.; Ouyang, G. H.; Niu, D.; Sang, Y. T. Org. Chem. Front. 2018, 5, 2885. |
[6] | Chen, X.; Liu, K.; Fang, Y. Prog. Chem. 2020, 32, 861. (in Chinese) |
[6] | (陈香李, 刘凯强, 房喻, 化学进展, 2020, 32, 861.) |
[7] | Zhao, Q.; Li, S.; Liu, Y. Prog. Chem. 2018, 30, 673. (in Chinese) |
[7] | (赵倩, 李盛华, 刘育, 化学进展, 2018, 30, 673.) |
[8] | Babu, S. S.; Praveen, V. K.; Ajayaghosh, A. Chem. Rev. 2014, 114, 1973. |
[9] | Jin, Q.; Li, J.; Li, X.; Zhang, L.; Fang, S.; Liu, M. Prog. Chem. 2014, 26, 919. (in Chinese) |
[9] | (靳清贤, 李晶, 李孝刚, 张莉, 方少明, 刘鸣华, 化学进展, 2014, 26, 919.) |
[10] | Fan, W.; Chen, L.; Yang, H. Chin. J. Org. Chem. 2015, 35, 578. (in Chinese) |
[10] | (范文佳, 陈丽君, 杨海波, 有机化学, 2015, 35, 578.) |
[11] | Yang, H.; Zhang, Y.; Li, Y.; Wang, J.; Li, X.; Song, J.; Zhang, B.; Feng, Y. Chin. J. Org. Chem. 2017, 37, 1991. (in Chinese) |
[11] | (杨贺玮, 张宇哲, 李艳杰, 王京翔, 李小萌, 宋健, 张宝, 冯亚青, 有机化学, 2017, 37, 1991.) |
[12] | Wang, J.; Li, A.; Li, Z. Prog. Chem. 2022, 34, 487. (in Chinese) |
[12] | (王金凤, 李爱森, 李振, 化学进展, 2022, 34, 487.) |
[13] | Li, Z.; Ji, X. F.; Xie, H. L.; Tang, B. Z. Adv. Mater. 2021, 33, 2100021. |
[14] | Zhang, K.; Gao, G.; Li, Y.; Song, Y.; Wen, Y.; Zhang, X. Prog. Chem. 2021, 33, 1887. (in Chinese) |
[14] | (张开宇, 高国伟, 李延生, 宋钰, 温永强, 张学记, 化学进展, 2021, 33, 1887.) |
[15] | Yang, X. Y.; Zhang, G. X.; Zhang, D. Q. J. Mater. Chem. 2012, 22, 38. |
[16] | Taylor, D. L.; Panhuis, M. I. H. Adv. Mater. 2016, 28, 9060. |
[17] | Lu, T.-T.; Liu, J.; Li, H.; Wei, T.-B.; Zhang, Y.-M.; Lin, Q. Prog. Chem. 2016, 28, 1541. (in Chinese) |
[17] | (逯桃桃, 刘娟, 李辉, 魏太保, 张有明, 林奇, 化学进展, 2016, 28, 1541.) |
[18] | Panja, S.; Adams, D. J. Chem. Soc. Rev. 2021, 50, 5165. |
[19] | Cai, Z.; Zhang, B.; Jiang, L.; Li, Y.; Xu, G.; Ma, J. Prog. Chem. 2019, 31, 1653. (in Chinese) |
[19] | (蔡紫煊, 张斌, 姜丽阳, 许国贺, 马晶军,李允译, 化学进展, 2019, 31, 1653.) |
[20] | Dendrimers: Towards Catalytic, Material and Biomedical Uses, Eds.: Caminade, A.-M.; Turrin, C.-O.; Laurent, R.; Ouali, A.; Delavaux-Nicot, B., Wiley-VCH, Weinheim, 2011. |
[21] | Vögtle, F.; Richardt, G.; Werner, N. Dendrimer Chemistry: Concepts, Synthesis, Properties, Applications, Wiley-VCH, Weinheim, 2009. |
[22] | Smith, D. K. Adv. Mater. 2006, 18, 2773. |
[23] | Feng, Y.; He, Y. M.; Fan, Q. H. Chem. Asian J. 2014, 9, 1724. |
[24] | Kaga, S.; Arslan, M.; Sanyal, R.; Sanyal, A. Molecules 2016, 21, 497. |
[25] | Feng, Y.; Liu, Z. X.; Chen, H.; Fan, Q. H. Chem. Commun. 2022, 58, 8736. |
[26] | Newkome, G. R.; Baker, G. R.; Saunders, M. J.; Russo, P. S.; Gupta, V. K.; Yao, Z. Q.; Miller, J. E.; Bouillion, K. J. Chem. Soc. Chem. Commun. 1986, 752. |
[27] | Jang, W. D.; Jiang, D. L.; Aida, T. J. Am. Chem. Soc. 2000, 122, 3232. |
[28] | Pianowski, Z. L. Molecular Photoswitches-Chemistry, Properties, and Applications, Wiley-VCH, Weinheim, 2022. |
[29] | Ji, Y.; Kuang, G. C.; Jia, X. R.; Chen, E. Q.; Wang, B. B.; Li, W. S.; Wei, Y.; Lei, J. Chem. Commun. 2007, 4233. |
[30] | Kim, J. H.; Seo, M.; Kim, Y. J.; Kim, S. Y. Langmuir 2009, 25, 1761. |
[31] | Xie, F.; Ouyang, G. H.; Qin, L.; Liu, M. H. Chem. Eur. J. 2016, 22, 18208. |
[32] | Chen, Q.; Feng, Y.; Zhang, D. Q.; Zhang, G. X.; Fan, Q. H.; Sun, S. N.; Zhu, D. B. Adv. Funct. Mater. 2010, 20, 36. |
[33] | Sako, Y.; Takaguchi, Y. Org. Biomol. Chem. 2008, 6, 3843. |
[34] | Kuang, G. C.; Ji, Y.; Jia, X. R.; Li, Y.; Chen, E. Q.; Zhang, Z. X.; Wei, Y. Tetrahedron 2009, 65, 3496. |
[35] | Sui, X.; Feng, X.; Hempenius, M. A.; Vancso, G. J. J. Mater. Chem. B 2013, 1, 1658. |
[36] | Fukino, T.; Yamagishi, H.; Aida, T. Adv. Mater. 2017, 29, 1603888. |
[37] | Yang, X. Y.; Zhang, G. X.; Li, L. Q.; Zhang, D. Q.; Chi, L. F.; Zhu, D. B. Small 2012, 8, 578. |
[38] | Liu, Y. C.; Lei, W. W.; Chen, T.; Jin, L. Y.; Sun, G. Y.; Yin, B. Z. Chem. Eur. J. 2015, 21, 15235. |
[39] | Lakshmi, N. V.; Mandal, D.; Ghosh, S.; Prasad, E. Chem. Eur. J. 2014, 20, 9002. |
[40] | Busschaert, N.; Caltagirone, C.; Van Rossom, W.; Gale, P. A. Chem. Rev. 2015, 115, 8038. |
[41] | Kim, H.-J.; Lee, J.-H.; Lee, M. Angew. Chem. Int. Ed. 2005, 44, 5810. |
[42] | Teng, M. J.; Kuang, G. C.; Jia, X. R.; Gao, M.; Li, Y.; Wei, Y. J. Mater. Chem. 2009, 19, 5648. |
[43] | Xu, D. F.; Liu, X. L.; Lu, R.; Xue, P. C.; Zhang, X. F.; Zhou, H. P.; Jia, J. H. Org. Biomol. Chem. 2011, 9, 1523. |
[44] | Rajamalli, P.; Prasad, E. Org. Lett. 2011, 13, 3714. |
[45] | Rajamalli, P.; Prasad, E. Soft Matter 2012, 8, 8896. |
[46] | Rajamalli, P.; Prasad, E. Langmuir 2013, 29, 1609. |
[47] | Liu, Z. X.; Sun, Y. H.; Feng, Y.; Chen, H.; He, Y. M.; Fan, Q. H. Chem. Commun. 2016, 52, 2269. |
[48] | Zhao, G. Z.; Chen, L. J.; Wang, W.; Zhang, J.; Yang, G.; Wang, D. X.; Yu, Y. H.; Yang, H. B. Chem. Eur. J. 2013, 19, 10094. |
[49] | Sebastian, A.; Prasad, E. Langmuir 2020, 36, 10537. |
[50] | Liu, Y.; Deng, Y.; Dong, H. M.; Liu, K. K.; He, N. Y. Sci. China Chem. 2017, 60, 329. |
[51] | Rajamalli, P.; Malakar, P.; Atta, S.; Prasad, E. Chem. Commun. 2014, 50, 11023. |
[52] | Yu, X. D.; Chen, L. M.; Zhang, M. M.; Yi, T. Chem. Soc. Rev. 2014, 43, 5346. |
[53] | Percec, V.; Peterca, M.; Yurchenko, M. E.; Rudick, J. G.; Heiney, P. A. Chem. Eur. J. 2008, 14, 909. |
[54] | Feng, Y.; Liu, Z. T.; Liu, J.; He, Y. M.; Zheng, Q. Y.; Fan, Q. H. J. Am. Chem. Soc. 2009, 131, 7950. |
[55] | Feng, Y.; Liu, Z.-X.; Chen, H.; Yan, Z.-C.; He, Y.-M.; Liu, C.-Y.; Fan, Q.-H. Chem. Eur. J., 2014, 20, 7069. |
[56] | Sun, Z.; Huang, Q.; He, T.; Li, Z.; Zhang, Y.; Yi, L. ChemPhysChem 2014, 15, 2421. |
[57] | Liu, Z. X.; Feng, Y.; Yan, Z. C.; He, Y. M.; Liu, C. Y.; Fan, Q. H. Chem. Mater. 2012, 24, 3751. |
[58] | Liu, J.; Feng, Y.; Liu, Z. X.; He, Y. M.; Fan, Q. H. Chem. Asian J. 2013, 8, 572. |
[59] | Liu, Z. X.; Feng, Y.; Zhao, Z. Y.; Yan, Z. C.; He, Y. M.; Luo, X. J.; Liu, C. Y.; Fan, Q. H. Chem. Eur. J. 2014, 20, 533. |
[60] | Chen, H.; Feng, Y.; Deng, G. J.; Liu, Z. X.; He, Y. M.; Fan, Q. H. Chem. Eur. J. 2015, 21, 11018. |
[61] | Liu, Z.; Hao, X.; Fang, W.; Feng, Y. Chemistry (Huaxue Tongbao) 2022, 85, 78. (in Chinese) |
[61] | (刘志雄, 郝晓宇, 房微魏, 冯宇, 化学通报, 2022, 85, 78.) |
[62] | Hao, X. Y.; Liu, Z. X.; Qin, J.; Jin, X. Y.; Liu, L. Z.; Zhai, H.; Yang, W. F.; Yan, Z. C.; Feng, Y. Chem. Asian J. 2022, 17, e202101135. |
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