• Title/Summary/Keyword: Block copolymers

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The Formation of Metal Nanoparticles in pH-responsive Block Copolymers and Hydrogels

  • Anastasiadis, S.H.;Vamvakaki, M.;Palioura, D.;Spyros, A.
    • Proceedings of the Polymer Society of Korea Conference
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    • 2006.10a
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    • pp.85-85
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    • 2006
  • The micellization behavior and the metal-nanoparticle formation in PDEAEMA-b-PHEGMA double hydrophilic block copolymers are investigated. The hydrophobic PDEAEMA block is pH-sensitive: at low pH it can be protonated and it becomes hydrophilic, leading to molecular solubility, whereas at higher pH micelles are formed; the behavior is studied by DLS, NMR and AFM. In these micellar nanoreactors, metal nanorystals nucleate and grow upon reduction with sizes in the range of a few nm's as observed by TEM and XRD. Similarly, metal nanocrystals can be formed within pH-sensitive microgels (${\sim}250nm$ in diameter), synthesized by emulsion copolymerization of DEAEMA, which also exhibit reversible swelling properties in water by adjusting the pH.

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Preparation and Characterization of Poly$({\gamma}-benzyl\;L-glutamate)$/Poly(ethylene oxide)-Lactoselactone Block Copolymers and Their Microspheres (Poly$({\gamma}-benzyl\;L-glutamate)$/Poly(ethylene oxide)-Lactoselactone 블록공중합체와 이들의 미립자 제조 및 특성)

  • Kim, Young-Hoon;Cho, Chong-Su;Sung, Young-Kiel;Chung, Byung-Ho;Lee, Kang-Choon
    • Journal of Pharmaceutical Investigation
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    • v.22 no.3
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    • pp.237-240
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    • 1992
  • A series of biodegradable block copolymers consisting of $poly({\gamma}-benzyl\;L-glutamate)$ (PBLG) and poly(ethylene oxide) (PEO)-lactoselactone were prepared by polymerization of PEO-lactoselactone and ${\gamma}-benzyl$ L-glutamate-N-carboxyanhydride and characterized by IR and NMR. From circular dichroism measurements, it was found that the polymers exist in the ${\alpha}-helical$ conformation. Block copolymer microspheres were prepared by solvent-extraction-precipitation method for their primary evaluation for medical and biological applications.

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Synthesis of Amphiphilic Poly(alkyl methacrylate-b-methacrylic acid) by Group Transfer Polymerization and Selective Hydrolysis

  • Soon Ki Kwon;Weon Jung Choi;Yun Hi Kim;Sam Kwon Choi
    • Bulletin of the Korean Chemical Society
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    • v.13 no.5
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    • pp.479-482
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    • 1992
  • Several poly(alkyl methacrylate-b-t-butyl methacrylate) diblock copolymers were synthesized by group transfer polymerization. The molecular weight of poly(t-butyl methacrylate) segments and the composition of the resulting block copolymers were controlled by the monomer feed ratios and mole ratios of monomer to initiator. The poly(t-butyl methacrylate) block was quantitatively hydrolyzed to poly(methacrylic acid) block by refluxing with a catalytic amount of p-toluenesulfonic acid in dioxane at $100^{\circ}C$ for 12 hrs. The thermogravimetric analysis of poly(alkyl methacrylate-b-t-butyl methacrylate) exhibited the lose of isobutylene and subsequent anhydride formation in the range of $205-300^{\circ}C$.

Preparation of Polyolefin Based Segmented Copolymers Through Controlled Radical Polymerization Technique (조절 라디칼 중합법에 의한 폴리올레핀 기반 분절 공중합체의 제조)

  • Hong, Sung-Chul;Lee, Seong-Hoon;Cho, Hyun-Chul
    • Elastomers and Composites
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    • v.44 no.3
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    • pp.209-221
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    • 2009
  • Polyolefins are important commodity polymers with the largest volume of business owing to their outstanding combination of cost performance and excellent physical properties. However, the lack of functional groups often has limited their end uses, such as compatibilizer, modifier and adhesive, where the interaction with other materials is especially important. The incorporation of functional groups as polymer segments to afford block or graft polyolefin copolymers has been extensively investigated in the context of the functional polyolefin hybrids. Living polymerization processes have been considered to be an efficient method to prepare the polyolefin hybrids with precisely controlled architecture and compositions. Among the living polymerization techniques, controlled/"living" radical polymerization (CRP) methods are very effective not only because of the controllability of polymerization but also because of the versatility of monomers and polymerization conditions. In this review paper, progresses on the preparations of polyolefin graft or block copolymers through CRP techniques are summarized. The commodity polymers such as polyisobutylene, polyethylene and polypropylene are combined with polar segments such as polyacrylate, polymethacrylate, polystyrene to yield functionalized polyolefins.

Preparation and Release Behavior of Methoxy poly(ethylene glycol)- poly(L-lactide-co-glycolide) Wafer Containing Albumin (알부민을 함유한 메톡시 폴리(에틸렌 글리콜)- 폴리(L-락타이드-co-글리콜라이드) 웨이퍼의 제조 및 방출거동)

  • 서광수;김문석;김경자;조선행;이해방;강길선
    • Polymer(Korea)
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    • v.28 no.4
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    • pp.328-334
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    • 2004
  • A series of methoxy poly(ethylene glycol) (MPEG)-poly(L-lactide-co-glycolide) (PLGA) diblock copolymers were synthesized by ring-opening polymerization of L-lactide and glycolide with carbitol (134 g/mole) or different molecular weights of MPEG (550, 2000, and 5000 g/mole) as an initiator in presence of Sn(Oct)$_2$. The properties of diblock copolymers were characterized by using $^1$H-NMR, GPC, and XRD. After uniform mixing of block copolymers and 1% albumin bovine-fluorescein isothiocyanate(FITC-BSA) with a freeze miller, the wafers loaded FITC-BSA were fabricated by using a mold with a dimensions of 3 mm${\times}$1mm diameter. The release profiles of FITC-BSA and the pH changes of wafer were examined using pH 7.4 PBS for 30 days at 37$^{\circ}C$. The release profiles of albumin showed fast initial burst as the molecular weights of MPEG increased. As a result of this study, the release behavior of BSA was controlled with introducing MPEG in the block copolymers.

Patterned Surfaces in Self-Organized Block Copolymer Films with Hexagonally Ordered Microporous Structures

  • Hayakawa Teruaki;Kouketsu Takayuki;Kakimoto Masa-alki;Yokoyama Hideaki;Horiuchi Shin
    • Macromolecular Research
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    • v.14 no.1
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    • pp.52-58
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    • 2006
  • A novel fabrication of the patterned surfaces in the polymer films was demonstrated by using the self-organizing character of the block copolymers of polystyrene-b-oligothiophenes and polystyrene-b-aromatic amide dendron. Hexagonally arranged open pores with a micrometer-size were spontaneously formed by casting the polymer solutions under a moist air flow. The amphiphilic character of the block copolymers played the crucial role as a surfactant to stabilize the inverse emulsion of water in the organic solvent, and subsequently the aggregated structure of the hydrophilic oligothiophene or aromatic amide dendron segments remained on the interiors of the micropores. The chemical composition on the top of the surface of the microporous films was characterized by energy-filtering transmission electron microscopy (EFTEM) or a time-of-flight secondary ion mass spectrometer (ToF-SIMS). The characterizations clearly indicated that the patterned surfaces in the self-organized block copolymer films with the hexagonally ordered microporous structures were fabricated in a single step.

Amphiphilic Norbornene-Based Diblock Copolymers Containing Polyhedral Oligomeric Silsesquioxane Prepared by Living Ring Opening Metathesis Polymerization

  • Park, Su-Dong;Xu, Wentao;Chung, Chan-Hong;Kwon, Young-Hwan
    • Macromolecular Research
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    • v.16 no.2
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    • pp.155-162
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    • 2008
  • We report the successful synthesis of poly(NBECOOH-b-NBEPOSS) copolymers, taking advantage of the sequential, living ring opening metathesis polymerization of NBETMS and NBEPOSS using the $RuCl_2(=CHPh)(PCY_3)_2$/$CH_2Cl_2$/$20^{\circ}C$ system, followed by the hydrolysis of trimethylsilyl groups in poly(NBETMS-b-NBEPOSS) copolymers. The living behavior of ROMP of NBETMS was first investigated using two diagnostic plots, a first order kinetic plot and a $\bar{M}_n$ vs. conversion plot. The plots confirmed that no termination and chain transfer reaction had occurred during polymerization. Poly(NBECOOH-b-NBEPOSS) copolymers were prepared using the sequential monomer addition of NBEPOSS to living poly(NBETMS) chain ends, followed by the hydrolysis of trimethylsilyl groups in the poly(NBETMS-b-NBEPOSS) copolymers. The high structural integrity of poly(NBE-COOH-b-NBEPOSS) copolymers was confirmed by $^1H$-NMR, $^{13}C$-NMR spcctroscopy and GPC.