Supporting Information
Supporting Information File 1: The preparation of α-CD-CTA and β-CD-CTA and typical polymerization methods. | ||
Format: PDF | Size: 779.3 KB | Download |
Supporting Information File 2: Crystallographic information file for α-CD-DMA. | ||
Format: CIF | Size: 429.9 KB | Download |
Supporting Information File 3: Crystallographic information file for β-CD-DMA. | ||
Format: CIF | Size: 163.3 KB | Download |
Cite the Following Article
Radical polymerization by a supramolecular catalyst: cyclodextrin with a RAFT reagent
Kohei Koyanagi, Yoshinori Takashima, Takashi Nakamura, Hiroyasu Yamaguchi and Akira Harada
Beilstein J. Org. Chem. 2016, 12, 2495–2502.
https://doi.org/10.3762/bjoc.12.244
How to Cite
Koyanagi, K.; Takashima, Y.; Nakamura, T.; Yamaguchi, H.; Harada, A. Beilstein J. Org. Chem. 2016, 12, 2495–2502. doi:10.3762/bjoc.12.244
Download Citation
Citation data can be downloaded as file using the "Download" button or used for copy/paste from the text window
below.
Citation data in RIS format can be imported by all major citation management software, including EndNote,
ProCite, RefWorks, and Zotero.
Presentation Graphic
Picture with graphical abstract, title and authors for social media postings and presentations. | ||
Format: PNG | Size: 409.0 KB | Download |
Citations to This Article
Up to 20 of the most recent references are displayed here.
Scholarly Works
- Yao, P.; Xu, W.; Zhang, X.; Kong, J. Supramolecular Catalyst for Improving the Sensitivity of Biomolecule Detection. ChemistrySelect 2024, 9. doi:10.1002/slct.202403956
- Jarak, I.; Ramos, S.; Caldeira, B.; Domingues, C.; Veiga, F.; Figueiras, A. The Many Faces of Cyclodextrins within Self-Assembling Polymer Nanovehicles: From Inclusion Complexes to Valuable Structural and Functional Elements. International journal of molecular sciences 2024, 25, 9516. doi:10.3390/ijms25179516
- You, J.; Cao, X.; Wu, Z.; Tang, C.; Hou, L.; Xiao, L. Block copolymers as highly effective dispersant for high solid content SiO2 with wide pH tolerability in aqueous. European Polymer Journal 2024, 208, 112893. doi:10.1016/j.eurpolymj.2024.112893
- Sarabia-Vallejo, Á.; Caja, M. D. M.; Olives, A. I.; Martín, M. A.; Menéndez, J. C. Cyclodextrin Inclusion Complexes for Improved Drug Bioavailability and Activity: Synthetic and Analytical Aspects. Pharmaceutics 2023, 15, 2345. doi:10.3390/pharmaceutics15092345
- Liu, J.; Huang, F.; Liu, Y. A modular and efficient synthetic platform for the construction of supramolecular mono-telechelic polymers. Giant 2022, 12, 100128. doi:10.1016/j.giant.2022.100128
- Nakamura, T. Development of Artificial Receptors Based on Assembly of Metal Complex Units and Desymmetrization of Molecular Components. Chemistry Letters 2021, 50, 1822–1830. doi:10.1246/cl.210418
- Przybyla, M. A.; Yilmaz, G.; Becer, C. R. Natural cyclodextrins and their derivatives for polymer synthesis. Polymer Chemistry 2020, 11, 7582–7602. doi:10.1039/d0py01464h
- Seidi, F.; Shamsabadi, A. A.; Amini, M.; Shabanian, M.; Crespy, D. Functional materials generated by allying cyclodextrin-based supramolecular chemistry with living polymerization. Polymer Chemistry 2019, 10, 3674–3711. doi:10.1039/c9py00495e
- Ayari, M. G.; Kadhirvel, P.; Favetta, P.; Plano, B.; Dejous, C.; Carbonnier, B.; Agrofoglio, L. A. Synthesis of imprinted hydrogel microbeads by inverse Pickering emulsion to controlled release of adenosine 5'‑monophosphate. Materials science & engineering. C, Materials for biological applications 2019, 101, 254–263. doi:10.1016/j.msec.2019.03.102