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For: Chen Y, Chen H, Feng M, Dong Y. Amphiphilic gradient copolymers: Synthesis, self-assembly, and applications. European Polymer Journal 2016;85:489-98. [DOI: 10.1016/j.eurpolymj.2016.11.009] [Cited by in Crossref: 26] [Cited by in F6Publishing: 26] [Article Influence: 3.7] [Reference Citation Analysis]
Number Citing Articles
1 Chernikova EV, Mineeva KO. Reversible Deactivation Radical Copolymerization: Synthesis of Copolymers with Controlled Unit Sequence. Polym Sci Ser C 2022;64:1-25. [DOI: 10.1134/s1811238222200024] [Reference Citation Analysis]
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4 Sedlacek O, Bardoula V, Vuorimaa-Laukkanen E, Gedda L, Edwards K, Radulescu A, Mun GA, Guo Y, Zhou J, Zhang H, Nardello-Rataj V, Filippov S, Hoogenboom R. Influence of Chain Length of Gradient and Block Copoly(2-oxazoline)s on Self-Assembly and Drug Encapsulation. Small 2022;:e2106251. [PMID: 35212458 DOI: 10.1002/smll.202106251] [Cited by in Crossref: 3] [Cited by in F6Publishing: 4] [Article Influence: 3.0] [Reference Citation Analysis]
5 Li S, Cui R, Yu C, Zhou Y. Coarse-Grained Model of Thiol-Epoxy-Based Alternating Copolymers in Explicit Solvents. J Phys Chem B 2022. [PMID: 35179028 DOI: 10.1021/acs.jpcb.1c09406] [Reference Citation Analysis]
6 Loukotová L, Švec P, Groborz O, Heizer T, Beneš H, Raabová H, Bělinová T, Herynek V, Hrubý M. Direct Comparison of Analogous Amphiphilic Gradient and Block Polyoxazolines. Macromolecules 2021;54:8182-94. [DOI: 10.1021/acs.macromol.0c02674] [Cited by in Crossref: 7] [Cited by in F6Publishing: 8] [Article Influence: 3.5] [Reference Citation Analysis]
7 Chroni A, Mavromoustakos T, Pispas S. Poly(2-oxazoline)-Based Amphiphilic Gradient Copolymers as Nanocarriers for Losartan: Insights into Drug–Polymer Interactions. Macromol 2021;1:177-200. [DOI: 10.3390/macromol1030014] [Cited by in Crossref: 3] [Cited by in F6Publishing: 4] [Article Influence: 1.5] [Reference Citation Analysis]
8 Koschitzki F, Wanka R, Sobota L, Gardner H, Hunsucker KZ, Swain GW, Rosenhahn A. Amphiphilic Zwitterionic Acrylate/Methacrylate Copolymers for Marine Fouling-Release Coatings. Langmuir 2021;37:5591-600. [PMID: 33930274 DOI: 10.1021/acs.langmuir.1c00428] [Cited by in Crossref: 7] [Cited by in F6Publishing: 8] [Article Influence: 3.5] [Reference Citation Analysis]
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10 Zhou Y, Han S, Gu Y, Chen M. Facile synthesis of gradient copolymers enabled by droplet-flow photo-controlled reversible deactivation radical polymerization. Sci China Chem 2021;64:844-51. [DOI: 10.1007/s11426-020-9946-8] [Cited by in Crossref: 8] [Cited by in F6Publishing: 8] [Article Influence: 4.0] [Reference Citation Analysis]
11 Ludin D, Voitovich Y, Salomatina E, Kuznetsova Y, Grishin I, Fedushkin I, Zaitsev S. Polymerization with Borane Chemistry. Tributylborane/p-Quinone System as a New Method of Reversible-Deactivation Radical Copolymerization for Styrene and Methyl Acrylate. Macromol Res 2020;28:851-60. [DOI: 10.1007/s13233-020-8111-3] [Cited by in Crossref: 3] [Cited by in F6Publishing: 2] [Article Influence: 1.0] [Reference Citation Analysis]
12 Guo X, Zhang T, Wu Y, Shi W, Choi B, Feng A, Thang SH. Synthesis of CO2-responsive gradient copolymers by switchable RAFT polymerization and their controlled self-assembly. Polym Chem 2020;11:6794-6802. [DOI: 10.1039/d0py01109f] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 1.3] [Reference Citation Analysis]
13 Rahman MA, Sha Y, Jui MS, Lamm ME, Ma Y, Tang C. Facial Amphiphilicity-Induced Self-Assembly (FAISA) of Amphiphilic Copolymers. Macromolecules 2019;52:9526-35. [DOI: 10.1021/acs.macromol.9b02008] [Cited by in Crossref: 10] [Cited by in F6Publishing: 10] [Article Influence: 2.5] [Reference Citation Analysis]
14 Xu S, Zhang T, Kuchel RP, Yeow J, Boyer C. Gradient Polymerization–Induced Self‐Assembly: A One‐Step Approach. Macromol Rapid Commun 2019;41:1900493. [DOI: 10.1002/marc.201900493] [Cited by in Crossref: 16] [Cited by in F6Publishing: 16] [Article Influence: 4.0] [Reference Citation Analysis]
15 Carrero MJ, Ramos MJ, Rodríguez JF, Borreguero AM. Ethylene oxide based copolymers functionalized with terminal alkynes: Structure influence on their micelle formation. Reactive and Functional Polymers 2019;140:14-21. [DOI: 10.1016/j.reactfunctpolym.2019.04.009] [Cited by in Crossref: 5] [Cited by in F6Publishing: 3] [Article Influence: 1.3] [Reference Citation Analysis]
16 Alam MM, Jack KS, Hill DJ, Whittaker AK, Peng H. Gradient copolymers – Preparation, properties and practice. European Polymer Journal 2019;116:394-414. [DOI: 10.1016/j.eurpolymj.2019.04.028] [Cited by in Crossref: 25] [Cited by in F6Publishing: 25] [Article Influence: 6.3] [Reference Citation Analysis]
17 Sedlacek O, Lava K, Verbraeken B, Kasmi S, De Geest BG, Hoogenboom R. Unexpected Reactivity Switch in the Statistical Copolymerization of 2-Oxazolines and 2-Oxazines Enabling the One-Step Synthesis of Amphiphilic Gradient Copolymers. J Am Chem Soc 2019;141:9617-22. [DOI: 10.1021/jacs.9b02607] [Cited by in Crossref: 24] [Cited by in F6Publishing: 24] [Article Influence: 6.0] [Reference Citation Analysis]
18 Zheng C. Gradient copolymer micelles: an introduction to structures as well as structural transitions. Soft Matter 2019;15:5357-70. [DOI: 10.1039/c9sm00880b] [Cited by in Crossref: 14] [Cited by in F6Publishing: 14] [Article Influence: 3.5] [Reference Citation Analysis]
19 Tabujew I, Cokca C, Zartner L, Schubert US, Nischang I, Fischer D, Peneva K. The influence of gradient and statistical arrangements of guanidinium or primary amine groups in poly(methacrylate) copolymers on their DNA binding affinity. J Mater Chem B 2019;7:5920-9. [DOI: 10.1039/c9tb01269a] [Cited by in Crossref: 8] [Cited by in F6Publishing: 8] [Article Influence: 2.0] [Reference Citation Analysis]
20 Tang Y, Sun J, Li S, Ran Z, Xiang Y. Effect of ethanol in the coagulation bath on the structure and performance of PVDF-g-PEGMA/PVDF membrane. J Appl Polym Sci 2019;136:47380. [DOI: 10.1002/app.47380] [Cited by in Crossref: 10] [Cited by in F6Publishing: 11] [Article Influence: 2.0] [Reference Citation Analysis]
21 Gumerov RA, Potemkin II. Swelling of Planar Polymer Brushes in Solvent Vapors. Polym Sci Ser C 2018;60:66-75. [DOI: 10.1134/s181123821802011x] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 0.8] [Reference Citation Analysis]
22 Zhu C, Yao R, Chen Y, Feng M, Ma S, Zhang C. Self-assembly of fluorinated gradient copolymer in three-dimensional co-flow focusing microfluidic. J Colloid Interface Sci 2018;526:75-82. [PMID: 29723794 DOI: 10.1016/j.jcis.2018.04.076] [Cited by in Crossref: 10] [Cited by in F6Publishing: 10] [Article Influence: 2.0] [Reference Citation Analysis]
23 Datta S, Jutková A, Šrámková P, Lenkavská L, Huntošová V, Chorvát D, Miškovský P, Jancura D, Kronek J. Unravelling the Excellent Chemical Stability and Bioavailability of Solvent Responsive Curcumin-Loaded 2-Ethyl-2-oxazoline-grad-2-(4-dodecyloxyphenyl)-2-oxazoline Copolymer Nanoparticles for Drug Delivery. Biomacromolecules 2018;19:2459-71. [PMID: 29634248 DOI: 10.1021/acs.biomac.8b00057] [Cited by in Crossref: 25] [Cited by in F6Publishing: 25] [Article Influence: 5.0] [Reference Citation Analysis]
24 Eggers S, Eckert T, Abetz V. Double thermoresponsive block-random copolymers with adjustable phase transition temperatures: From block-like to gradient-like behavior. J Polym Sci Part A: Polym Chem 2018;56:399-411. [DOI: 10.1002/pola.28906] [Cited by in Crossref: 18] [Cited by in F6Publishing: 19] [Article Influence: 3.0] [Reference Citation Analysis]
25 Saubern S, Nguyen X, Nguyen V, Gardiner J, Tsanaktsidis J, Chiefari J. Preparation of Forced Gradient Copolymers Using Tube-in-Tube Continuous Flow Reactors. Macromol React Eng 2017;11:1600065. [DOI: 10.1002/mren.201600065] [Cited by in Crossref: 14] [Cited by in F6Publishing: 14] [Article Influence: 2.3] [Reference Citation Analysis]