• 제목/요약/키워드: Electrospun nanofiber

검색결과 134건 처리시간 0.029초

전기방사된 나노파이버 매트를 이용한 약물전달시스템에 관한 연구 (Drug Delivery System Using Electrospun Nanofiber Mats)

  • 윤현;박윤경;김근형
    • 폴리머
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    • 제33권3호
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    • pp.219-223
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    • 2009
  • 전기방사 공정을 이용하여 제조된 나노파이버는 나노 소자, 필터, 방호닦, 항균성 드레싱 및 약물전달 등 다양한 분야에서 이용되고 있다. 약물전달시스템(drug delivery system, DDS)은 기존 의약품의 부작용을 최소화하며 그 효능 및 효과를 극대화할 수 있어야 하고 필요한 양의 약물을 원하는 환부에 효율적으로 전달할 수 있어야 한다. 본 연구에서는 전기유체역학공정의 하나인 전기방사공정을 이용하여, poly($\varepsilon$-carprolactone)(PCL) poly(ethylene oxide(PEO)를 나노파이버 매트로 만들었으며, 고분자와 동시 방사된 Rhodamine B의 방출량을 측정하였다. PCL/Rhodamine B/PEO/PCL 나노파이버 매트는 전기방사 시간을 통한 두께 조절을 통하여 약물전달 거동이 조절될 수 있음을 확인하였으며, 실제 Peptide를 PEO와 동시 전기방사시켜 얻어진 나노파이버 peptide가 방출되는 거동을 확인하였다. PCL/Peptide/PEO/PCL시스템에서 방출된 peptide는 약물방출 시험 후에도 약물로서의 활성도를 잃지 않았으며, 이러한 나노파이버를 이용한 Peptide 방출메커니즘은 새로운 약물전달시스템으로 적용 및 응용될 수 있을 것으로 예상된다.

전기방사된 PVDF 섬유웹의 전기적 특성에 있어 입자의 영향 (Influence of Particles on the Electrical Properties of Electrospun PVDF Fiberwebs)

  • Lee, Young-Soo;Joo, Chang-Whan
    • 한국섬유공학회:학술대회논문집
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    • 한국섬유공학회 2003년도 가을 학술발표회 논문집
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    • pp.271-272
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    • 2003
  • Electrospinning is a novel process for forming fibers with submicron scale diameters through the action of electrical force. In the previous study, we performed study on the ultrafine PVDF nanofiber production in the stable spinning condition. Recently it would be great interest to fabricate IP(inorganic particle) assemblies in nanofibe. since such IP/nanofiber hybrid materials might be used in a nonwoven form as nanowires, medical gauges for bums healing and cell growing, sensors, chemical and gas filteration. (omitted)

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Acrylic Acid-Grafted Hydrophilic Electrospun Nanofibrous Poly(L-lactic acid) Scaffold

  • Park, Kwi-Deok;Jung, Hyun-Jung;Kim, Jae-Jin;Ahn, Kwang-Duk;Han, Dong-Keun;Ju, Young-Min
    • Macromolecular Research
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    • 제14권5호
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    • pp.552-558
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    • 2006
  • Biodegradable nanofibrous poly(L-lactic acid) (PLLA) scaffold was prepared by an electrospinning process for use in tissue regeneration. The nanofiber scaffold was treated with oxygen plasma and then simultaneously in situ grafted with hydrophilic acrylic acid (AA) to obtain PLLA-g-PAA. The fiber diameter, pore size, and porosity of the electrospun nanofibrous PLLA scaffold were estimated as $250\sim750nm,\;\sim30{\mu}m$, and 95%, respectively. The ultimate tensile strength was 1.7 MPa and the percent elongation at break was 120%. Although the physical and mechanical properties of the PLLA-g-PAA scaffold were comparable to those of the PLLA control, a significantly lower contact angle and significantly higher ratio of oxygen to carbon were notable on the PLLA-g-PAA surface. After the fibroblasts were cultured for up to 6 days, cell adhesion and proliferation were much improved on the nanofibrous PLLA-g-PAA scaffold than on either PLLA film or unmodified nanofibrous PLLA scaffold. The present work demonstrated that the applications of plasma treatment and hydrophilic AA grafting were effective to modify the surface of electrospun nanofibrous polymer scaffolds and that the altered surface characteristics significantly improved cell adhesion and proliferation.

나노웹을 이용한 라미네이트소재의 마찰음 특성 (Characteristics of Rustling Sound of Laminated Fabric Utilizing Nano-web)

  • 정태영;이유진;이승신;조길수
    • 한국의류산업학회지
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    • 제15권4호
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    • pp.620-629
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    • 2013
  • This study examines the rustling sound characteristics of electrospun nanofiber web laminates according to layer structures. This study assesses mechanical properties and frictional sounds (such as SPL); in addition, Zwicker's psychoacoustic parameters (such as Loudness (Z), Sharpness (Z), Roughness (Z), and Fluctuation strength (Z)) were calculated using the Sound Quality Program (ver.3.2, B&K, Denmark). The result determined how to control these characteristics and minimize rustling sounds. A total of 3 specimens' frictional sound (generated at 0.63 m/s) was recorded using a Simulator for Frictional Sound of Fabrics (Korea Patent No. 10-2008-0105524) and SPLs were analyzed with a Fast Fourier Transformation (FFT). The mechanical properties of fabrics were measured with a KES-FB system. The SPL value of the sound spectrum showed 6.84~58.47dB at 0~17,500Hz. The SPL value was 61.2dB for the 2-layer PU nanofiber web laminates layered on densely woven PET(C1) and was the highest at 65.1dB for the 3-layer PU nanofiber web laminates (C3). Based on SPSS 18.0, it was shown that there is a correlation between mechanical properties and psychoacoustic characteristics. Tensile properties (LT), weight (T), and bending properties (2HB) showed a high correlation with psychoacoustic characteristics. Tensile linearity (LT) with Loudness (Z) showed a negative correlation coefficient; however, weight (T) with Sharpness (Z) and Roughness (Z), and bending hysteresis (2HB) with Roughness (Z) indicated positive correlation coefficients, respectively.

Electrospun Antimicrobial Polyurethane Nanofibers Containing Silver Nanoparticles for Biotechnological Applications

  • Sheikh, Faheem A.;Barakat, Nasser A.M.;Kanjwal, Muzafar A.;Chaudhari, Atul A.;Jung, In-Hee;Lee, John-Hwa;Kim, Hak-Yong
    • Macromolecular Research
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    • 제17권9호
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    • pp.688-696
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    • 2009
  • In this study, a new class of polyurethane (PU) nanofibers containing silver (Ag) nanoparticles (NPs) was synthesized by electrospinning. A simple method that did not depending on additional foreign chemicals was used to self synthesize the silver NPs in/on PU nanofibers. The synthesis of silver NPs was carried out by exploiting the reduction ability of N,N-dimethylformamide (DMF), which is used mainly to decompose silver nitrate to silver NPs. Typically, a sol-gel consisting of $AgNO_3$/PU was electrospun and aged for one week. Silver NPs were created in/on PU nanofibers. SEM confirmed the well oriented nanofibers and good dispersion of pure silver NPs. TEM indicated that the Ag NPs were 5 to 20 nm in diameter. XRD demonstrated the good crystalline features of silver metal. The mechanical properties of the nanofiber mats showed improvement with increasing silver NPs content. The fixedness of the silver NPs obtained on PU nanofibers was examined by harsh successive washing of the as-prepared mats using a large amount of water. The results confirmed the good stability of the synthesized nanofiber mats. Two model organisms, E. coli and S. typhimurium, were used to check the antimicrobial influence of these nanofiber mats. Subsequently, antimicrobial tests indicated that the prepared nanofibers have a high bactericidal effect. Accordingly, these results highlight the potential use of these nanofiber mats as antimicrobial agents.

펨토초 레이저 절삭 공정을 이용한 생분해성 나노섬유 표면 미세 패터닝 공정 (Micropatterning on Biodegradable Nanofiber Scaffolds by Femtosecond Laser Ablation Process)

  • 정용우;전인동;김유찬;석현광;정석;전호정
    • 한국표면공학회지
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    • 제49권6호
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    • pp.555-559
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    • 2016
  • A biodegradable nanofiber scaffolds using electrospining provide fibrous guidance cues for controlling cell fate that mimic the native extracellular matrix (ECM). It can create a pattern using conventional electrospining method, but has a difficulty to generate one or more pattern structures. Femtosecond(fs) laser ablation has much interested in patterning on biomaterials in order to distinguish the fundamental or systemic interaction between cell and material surface. The ablated materials with a short pulse duration using femtosecond laser that allows for precise removal of materials without transition of the inherent material properties. In this study, linear grooves and circular craters were fabricated on electrospun nanofiber scaffolds (poly-L-lactide(PLLA)) by femtosecond laser patterning processes. As parametric studies, pulse energy and beam spot size were varied to determine the effects of the laser pulse on groove size. We confirmed controlling pulse energy to $5{\mu}J-20{\mu}J$ and variation of lens maginfication of 2X, 5X, 10X, 20X created grooves of width to approximately $5{\mu}m-50{\mu}m$. Our results demonstrate that femtosecond laser processing is an effective means for flexibly structuring the surface of electrospun PLLA nanofibers.

전기방사한 나노섬유 웹 처리소재와 상용 투습방수소재의 역학적 특성 비교 (Comparison of Mechanical Properties of Electrospun Nanofiber Web Layered Systems and Conventional Breathable Waterproof Fabrics)

  • 윤보람;이승신
    • 감성과학
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    • 제13권2호
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    • pp.391-402
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    • 2010
  • 전기방사한 나노섬유 웹은 가는 섬유직경과 수많은 미세공극 구조로 인해 우수한 투습성 및 차단 성능을 나타내며, 초박막 초경량의 특성을 갖는다. 이러한 특성 때문에 새로운 투습방수 소재로서 전기방사한 나노섬유 웹을 이용하고자 하는 시도가 이루어지고 있으며, 본 연구에서는 나노섬유 웹 처리소재의 역학적 특성을 측정하고 이를 기존 투습방수 소재와 비교함으로써 기능적 성능과 더불어 감성적 성능을 만족시키는 새로운 투습방수 소재 개발을 위한 기초자료를 제시하고자 하였다. 실험실 제작(lab-scale) 나노섬유 웹과 대량생산(commercial) 나노섬유 웹을 이용하여 웹 밀도와 기반 직물, 적층 구조, 라미네이팅 여부 등에 차이를 두어 다양한 전기방사 나노섬유 웹 처리소재를 제작하였다. 이들 시료에 대해 KES-FB system을 이용하여 역학적 특성을 평가하고, 이를 기존 투습방수 소재인 고밀도 직물, PTFE 라미네이팅 직물, PU 코팅 직물의 역학적 특성치와 비교하였다. 연구 결과, 실험실에서 제작한 나노섬유 웹 처리소재는 부피감이 있으면서 유연하였고, 대량생산된 나노섬유 웹을 라미네이팅한 소재는 신장 변형이 적은, 치밀한 구조의 소재인 것으로 나타났다. 또한 고밀도 직물과 실험실 제작 나노섬유 웹 처리소재는 낮은 인장선형성과 굽힘강성, 전단강성으로 유사한 거동을 나타내어, 기존 PU 코팅이나 PTFE 라미네이팅 직물에 비해 뻣뻣함이 덜하면서 유연하고 부드러운 태를 가지는 것으로 해석되었다. 따라서 전기방사 나노섬유 웹 처리소재가 일정 수준의 방수성을 확보한다면 기능적 성능과 감성적 성능을 모두 충족시키는 새로운 투습방수 소재로 이용될 수 있을 것으로 사료된다.

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Nanofabrication of Microbial Polyester by Electrospinning Promotes Cell Attachment

  • Lee, Ik-Sang;Kwon, Oh-Hyeong;Wan Meng;Kang, Inn-Kyu;Yoshihiro Ito
    • Macromolecular Research
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    • 제12권4호
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    • pp.374-378
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    • 2004
  • The biodegradable and biocompatible poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV), a copolymer of microbial polyester, was fabricated as nanofibrous mats by electrospinning. Image analysis of the electrospun nanofibers fabricated from a 2 wt% 2,2,2-trifluoroethanol solution revealed a unimodal distribution pattern of fiber diameters with an observed average diameter of ca. 185 nm. The fiber diameter of electrospun fabrics could be controlled by adjusting the electro spinning parameters, including the solvent composition, concentration, applied voltage, and tip-to-collector distance. Chondrocytes derived from rabbit ear were cultured on a PHBV cast film and an electrospun PHBV nano-fibrous mat. After incubation for 2 h, the percentages of attached chondrocytes on the surfaces of the flat PHBV film and the PHBV nanofibrous mat were 19.0 and 30.1 %, respectively. On the surface of the electrospun PHBV fabric, more chondrocytes were attached and appeared to have a much greater spreaded morphology than did that of the flat PHBV cast film in the early culture stage. The electro spun PHBV nanofabric provides an attractive structure for the attachment and growth of chondrocytes as cell culture surfaces for tissue engineering.