• Title/Summary/Keyword: 생분해성 고분자

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A Study of 2D Micro-patterning of Biodegradable Polymers by MEA (Multi Electrode Array)-based Electrohydrodynamic (EHD) printing (다중 전극 어레이 기반 전기수력학 인쇄 기술을 이용한 생분해성 고분자의 2차원 마이크로 패터닝 연구)

  • Hwang, Tae Heon;Ryu, WonHyoung
    • Particle and aerosol research
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    • v.13 no.3
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    • pp.111-118
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    • 2017
  • Electrohydrodynamic (EHD) printing with the aid of strong electric fields can generate and pattern droplets that are smaller than droplets by other printing technologies. Conventional EHD printing has created two-dimensional (2D) patterns by moving its nozzle or a substrate in X and Y directions. In this study, we aimed to develop an EHD system that can create 2D patterns using a multielectrode array (MEA) without moving a nozzle or substrate. In particular, printing ink mixtures of biodegradable polymers and model dyes was patterned on a thin film made of another biodegradable polymer. Without movement of a nozzle and substrate, stable 2D patterning of minimum $6{\mu}m$ size over a range of about 1 mm away from the nozzle position was achieved by MEA control only. We also demonstrated the possibility of denser 2D pattering of the ink mixtures by moving a target substrate relative to MEA position.

Compatibilization of PLA/LDPE blends (PLA/LDPE 블렌드의 상용화)

  • 이무성;김영필;이기영;김영대;최창남
    • Proceedings of the Korean Fiber Society Conference
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    • 2003.04a
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    • pp.323-324
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    • 2003
  • 생분해성 고분자 중에서 폴리락타이드 (poly(1-lactide), PLA)는 대량생산이 가능하기 때문에 많은 관심을 끌고 있다.[l,2] 그러나 상온에서 딱딱하고, 쉽게 가수분해가 일어나기 때문에 일반적인 용도로 다양하게 사용되기 위해서는 이런 단점이 개선되어야 한다. 본 연구에서는 생분해성 포장재료로 사용할 목적으로 PLA에 저밀도폴리에틸렌 (LDPE)를 혼합하여 PLA/LDPE 블렌드를 제조하였다. PLA/LDPE 블렌드는 비상용성이므로 이를 제어하기 위한 반응형 상용화제 첨가효과를 연구하였다. (중략)

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Evaluation of Cellulosic Fiber해s Biodegradation (셀룰로오스 섬유의 생분해성 평가)

  • 강연경;박정희
    • Proceedings of the Korean Fiber Society Conference
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    • 2002.04a
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    • pp.123-126
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    • 2002
  • 섬유와 같은 고분자 물질의 생분해성은 그 분자의 화학적, 물리적 특성과 밀접한 관련이 있으므로 같은 셀룰로오스로 이루어진 섬유라고 해도 각각의 화학적 구조나 물리적 특성에 따라 분해 거동이 다를 수 있다. 면, 마, 레이온, 아세테이트 등은 모두 셀룰로오스계 섬유라는 공통점이 있으나 구조적 차이, 제조 공정의 차이, 그리고 분자의 화학 조성 등이 다르며, 함유되어있는 비셀룰로오스분의 종류 및 구성비가 다르다. (중략)

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Synthesis of Biodegradable Polymers with Carbon Dioixde (이산화탄소를 이용한 생분해성 고분자의 합성)

  • Shin Sang Chul;Shin Jae Shik;Lee Yoon Rae
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.5 no.6
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    • pp.521-525
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    • 2004
  • Biodegradation of poly(ethylene carbonate) (PEC) and their terpolymers has been investigated in vitro. PEC has been synthesized with ethylene oxide (EO) and carbon dioxide, which is one of the greenhouse gases using Zinc glutarate has been used as catalyst Carbonate terpolymers have been prepared by the use of EO, cyclohexene oxide(CHO), and carbon dioxide. High biodegradability of PEC and terpolymers with EO. has been observed. Very low biodegradation of poly(propylene carbonate) (PPC) and poly(cyclohexene carbonate) (PCHC) has been shown. The weight loss, FT-IR and SEM have been employed to characterize biodegradability.

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Photo-crosslinking of PLA Fabrics by UV Irradiation (자외선 조사에 의한 PLA 직물의 광가교)

  • Yun, Deuk-Won;Jang, Jin-Ho
    • Proceedings of the Korean Society of Dyers and Finishers Conference
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    • 2011.03a
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    • pp.51-51
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    • 2011
  • PLA(Poly(lactic acid))는 옥수수, 사탕수수와 같은 천연재료에서 얻어진 젖산(lactic acid or lactide)을 원료로 하여 합성한 생분해성 고분자로서 석유자원의 고갈과 환경오염에 대한 관심이 고조됨에 따라 합성고분자를 대체할 재료로 각광받고 있다. 일반적인 PLA의 장점으로 투명성, 굽힘강성, 방수성, 가열밀봉성 등이 있으며, 단점으로는 열안정성, 내구성, 충격 강도 등이 있다. PLA를 섬유로 사용될 경우 농림 토목용 생분해성 소재 뿐 아니라 실크의 광택과 뛰어난 드레이프성, 감촉을 갖는 장점이 있다. 또한 수분을 신속하게 흡수하여 발산시키는 특성을 가지고 있고, 낮은 연소열과 가스량, 자기 소화성 등의 방염 특성 등을 지녀 의류 인테리어 소재로 매력적인 특성을 가지고 있다. PLA는 바이오고분자 중 비교적 높은 용융온도를 가지고 있지만 특히 염색 및 가공조건 등 고온 처리에 의해 기계적 강도가 저하되는 단점이 있어 내열성 및 기계적 강도의 향상이 필수적이다. 내열성 및 기계적 강도 향상을 위한 가장 손쉬운 방법은 고분자 사슬을 가교시키는 것으로서 열처리 또는 감마선, 전자선, 자외선 조사를 이용할 수 있는데 열에 의한 가교는 균일한 열전달과 고온이 필요하며 감마선 및 전자선 조사는 설비의 고비용과 방사성 노출 위험으로 인해 비친환경적이다. 따라서 다루기 쉽고 비용이 적게 들고 친환경적인 장점을 가진 자외선 조사법을 이용한 PLA의 광가교의 연구가 필요하다. 본 연구의 목적은 PLA 직물의 열안정성과 기계적 특성을 향상시키기 위해 광개시제와 자외선 조사를 이용하여 PLA 직물의 광가교를 수행하였다.

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Effect of Drug Eluting Uniformity for Biodegradable Stent by Solid Freeform Fabrication (쾌속조형기법을 이용한 생분해성 스텐트용 메쉬필름의 약물방출거동 효과)

  • Cheong, Sin Young;Kim, Yang Eun;Koh, Young Joo;Shin, Wang Soo;Lee, Jun Hee;Kim, Wan Doo;Yoo, Young Eun;Park, Su A
    • Polymer(Korea)
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    • v.38 no.1
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    • pp.93-97
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    • 2014
  • Biodegradable drug-eluting stent has dual functions of supporting the lumen and treating internal tumor preventing the restenosis by releasing drug. In this study, the polycaprolactone (PCL) based three dimensional (3D) mesh loaded with paclitaxel (PTX) was presented by rapid prototyping (RP) technique of solid freeform fabrication (SFF) for biodegradable drug-eluting stent application. PCL has many advantageous properties such as good biocompatibility, good mechanical properties, and good drug permeability. PTX is widely used in the cancer treatment by inhibiting tumor cell proliferation. Analytical methods of HPLC and NMR were used for simultaneous quantification of PTX. Scanning electron microscopy (SEM) was performed to observe the architecture and morphologies of 3D mesh. The cytotoxicity assay results indicated released PTX's biological activity. This study provided that PCL based 3D mesh loaded with PTX by RP technique has great potential for biodegradable drug-eluting stent application.

Biopolymer 생산공정의 개발

  • 유영제
    • The Microorganisms and Industry
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    • v.18 no.1
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    • pp.23-27
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    • 1992
  • 전분이 함유된 플ㄹ스틱 및 광분해성 플라스틱은 제외하고 순수하게 생분해되는 생분해성 고분자의 시장은 세계적으로 년간 140만톤으로 추정되고 있다. 이 중에서 생물공학과 직접적으로 관계가 있는 것은 polylactide계 polymer의 원료가 되는 lactic acid, pullulan과 같은 polysaccharide 그리고 PHA와 같은 polyester등으로서 본고에서는 PHA(polyhydroxyalkanoate)를 중심으로 생산공정이 어떻게 개발되어 오고 있는가 간단히 고찰하고자 한다. 이러한 생산공정의 원리는 pullulan 및 xanthan gum과 같은 타 생물고분자의 경우에도 유사하게 적용될 수 있다.

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Metal Surface Coating Using Electrospray of Biodegradable Polymers and $\alpha$-Lipoic Acid Release Behavior for Drug-Eluting Stents (생분해성 고분자의 전기분사를 이용한 약물방출 스텐트용 금속표면 코팅 및 ALA방출 거동)

  • Kim, Dong-Min;Lee, Bong-Soo;Park, Cheol-Ho;Park, Kwi-Deok;Son, Tae-Il;Jeong, Myeong-Ho;Han, Dong-Keun
    • Polymer(Korea)
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    • v.34 no.2
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    • pp.178-183
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    • 2010
  • Medical metal stents inserted to patients with a cardiovascular disease associated with coronary artery system have relatively increased the survival rate. The development of new stents is, however, urgently required due to restenosis and late thrombosis generated in metal stents. To solve these problems, the biodegradable polymers such as poly(lactide-co-glycolide) (PLGA), poly(L-lactide)(PLLA), and poly ($\varepsilon$-caprolactone)(PCL) were mixed with alpha lipoic acid (ALA), which is well known to inhibit the proliferation of neointimal hyperplasia. Subsequently, the ALA-loaded polymers were coated on stainless steel by electrospray. The drug-eluting behaviors from the coated polymers were investigated according to kinds and concentrations of polymers, spray rates, and kinds of solvents. The drug-eluting rate from PCL with the lowest glass transition temperature was the fastest among three polymers and followed by PLGA and PLLA. The surface roughness increased as the spray rate was increased and also the drug-eluting rate was affected by kinds of solvents with different boiling point. It is expected that drug-eluting stent (DES) coated with ALA-loaded polymers can be applied practically for clinical applications by controlling the behavior of drug release.

Preparation and Properties of Biodegradable Hydrogels from Poly(2-hydroxyethyl aspartamide) and HMDI (HMDI 가교 폴리아스팔트아미드 수화젤의 제조 및 특성)

  • Kim Jeong Hoon;Sim Sang Jun;Lee Dong Hyun;Kim Dukjoon;Lee Youngkwan;Kim Ji-Heung
    • Polymer(Korea)
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    • v.29 no.5
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    • pp.518-521
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    • 2005
  • Biodegradable polymers and hydrogels have been increasingly applied in a variety of biomedical applications including current drug delivery system and tissue engineering field. ${\alpha},\;{\beta}-Poly$(N-2-hydroxyethyl-DL-aspart-amide), PHEA. is one of poly(amino acids) with hydroxyethyl pendants, which is hewn to be biodegradable and potentially biocompatible. So that, the utilization and various chemical modifications of PHEA have been attempted for useful biomedical applications. In this wort chemical gels based on PHEA were prepared by crosslinking with diisocyanate compound in DMF in the presence of catalyst. Here, the PHEA was prepared from polysuccinimde, the thermal polycondensation product of aspartic acid, via ring-opening reaction with ethanolamine. The preparation of gels and their swelling behavior, depending on the different medium and pH, were investigated. Also the morphology by SEM and simple hydrolytic degradation were observed.

Polymeric Micelle Using Poly((R)-3-hydroxybutyric acid)/Poly(ethylene glycol) Amphiphilic Block Copolymer for Drug Delivery System (Poly((R)-3-hydroxybutyric acid)/Poly(ethylene glycol) 양친성 블록 공중합체를 이용한 약물전달체용 고분자 미셀)

  • Jeong, Kwan-Ho;Kim, Young-Jin
    • Polymer(Korea)
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    • v.30 no.6
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    • pp.512-518
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    • 2006
  • A biodegradable polymer poly((R) -3-hydroxybutyric acid) (PHB) was conjugated with a hydrophilic polymer poly(ethylene glycol) (PEG) by the ttansesterification reaction to form the amphiphilic block copolymer. PHB with low molecular weight ($3000{\sim}30000$) was appropriated for the drug delivery materials. High molecular weight PHB was hydrolyzed by an acid-catalyst to produce the low molecular weight one. Amphiphilic block copolymer was formed the self-assembled polymeric micelle system in the aqueous solution that the hydrophillic PEG was wraped the hydrophobic PHB. Generally, polymeric micelle forms the small particle between $10{\sim}200nm$. These polymeric micelle systems have been widely used for the drug delivery systems because they were biodegradable, biocompatible, non-toxic and patient compliant. The hydroxyl group of PEG was substituted with carboxyl group which has the reactivity to the ester group of PHB. Amphiphilic block copolymer was conjugated between PHB, and modified PEG at $176^{\circ}C$ which was higher than the melting point of PHB. Transesterification reaction was verified with DSC, FTIR, $^1H-NMR$. In the aqueous solution, critical micelle concentration (CMC) of the mPEG-co-PHB copolymer measured by the fluororescence scanning spectrometer was $5{\times}10^{-5}g/L$. The shape and size of the nanoparticle was taken by dynamic light scattering and atomic force microscopy. The size of the nanoparticle was about 130 nm and the shape was spherical. Our polymeric micelle system can be used as the passive targeting drug delivery system.