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      SCIE SCOPUS KCI등재

      한 단계 합성 방법을 통한 카다놀 기반 바이오 폴리올 합성 및 이를 이용한 폴리우레탄의 제조 및 특성

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      다국어 초록 (Multilingual Abstract)

      In this study, a cardanol based bio-polyol (CBP) was prepared via one-pot synthesis method. The synthesis of CBP was proceeded via Mannich reaction using cardanol, formaldehyde, and ethanolamine. The chemical structure of CBP was confirmed via ¹H NMR and FTIR. Then, bio-polyurethane (CBPU) was prepared using CBP and hexamethylene diisocyanate (HDI). For the comparison experiments, polyethylene glycol (PEG), petroleum-based polyol, was applied to prepare a polyurethane (PEGU) as a control sample. From analyses results for TGA, UTM, chemical resistance test, and antibacterial test for CBPU and PEGU, it was found that CBPU showed higher tensile strength, chemical resistance, and antibacterial properties against E. coli compared to PEGU.
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      In this study, a cardanol based bio-polyol (CBP) was prepared via one-pot synthesis method. The synthesis of CBP was proceeded via Mannich reaction using cardanol, formaldehyde, and ethanolamine. The chemical structure of CBP was confirmed via ¹H NMR...

      In this study, a cardanol based bio-polyol (CBP) was prepared via one-pot synthesis method. The synthesis of CBP was proceeded via Mannich reaction using cardanol, formaldehyde, and ethanolamine. The chemical structure of CBP was confirmed via ¹H NMR and FTIR. Then, bio-polyurethane (CBPU) was prepared using CBP and hexamethylene diisocyanate (HDI). For the comparison experiments, polyethylene glycol (PEG), petroleum-based polyol, was applied to prepare a polyurethane (PEGU) as a control sample. From analyses results for TGA, UTM, chemical resistance test, and antibacterial test for CBPU and PEGU, it was found that CBPU showed higher tensile strength, chemical resistance, and antibacterial properties against E. coli compared to PEGU.

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      참고문헌 (Reference)

      1 김성현 ; 김성우 ; 차상호, "두 단계의 반응을 통해 개질된 카다놀 유래 바이오폴리올 기반의 폴리우레탄 필름의 합성 및 특성 분석" 한국고분자학회 40 (40): 1005-1014, 2016

      2 김성현 ; 김상범 ; 차상호, "가교 결합이 가능한 카다놀 기반 바이오 폴리올을 이용한 바이오 폴리우레탄 필름의 제조 및 특성" 한국고분자학회 42 (42): 736-746, 2018

      3 Chattopadhyay, D. K., "hermal Stability and Flame Retardancy of Polyurethanes" 34 : 1068-1133, 2009

      4 Elschenbroich, C. Organometallics, "Third Completely Revised and Extended Edition" Wiley-VCH 128 : 12029-12030, 2006

      5 Ginzburg, V. V., "Theoretical Modeling of the Relationship Between Young's Modulus and Formulation Variables for Segmented Polyurethanes" 45 : 2123-2135, 2007

      6 Suresh, K. I., "Synthesis, Structure, and Properties of Novel Polyols from Cardanol and Developed Polyurethanes" 44 : 4504-4512, 2005

      7 Mythili, C., "Synthesis, Mechanical, Thermal and Chemical Properties of Polyurethanes Based on Cardanol" 27 : 235-241, 2004

      8 Daniela Filip ; Doina Macocinschi ; Cristina Gabriela Tuchilus ; Mirela Fernanda Zaltariov ; Cristian Dragos Varganici, "Synthesis, Characterization of Erythromycin Propionate Core-Based Star Poly(ether urethane)s and Their Antibacterial Properties" 한국고분자학회 29 (29): 613-624, 2021

      9 Bresolin, D., "Synthesis of a Green Polyurethane Foam from a Biopolyol Obtained by Enzymatic Glycerolysis and its Use for Immobilization of Lipase NS-40116" 42 : 213-222, 2019

      10 김서현 ; 이주헌 ; 한학수, "Synthesis of UV Curable, Highly Stretchable, Transparent Poly(urethaneacrylate) Elastomer and Applications Toward Next Generation Technology" 한국고분자학회 28 (28): 896-902, 2020

      1 김성현 ; 김성우 ; 차상호, "두 단계의 반응을 통해 개질된 카다놀 유래 바이오폴리올 기반의 폴리우레탄 필름의 합성 및 특성 분석" 한국고분자학회 40 (40): 1005-1014, 2016

      2 김성현 ; 김상범 ; 차상호, "가교 결합이 가능한 카다놀 기반 바이오 폴리올을 이용한 바이오 폴리우레탄 필름의 제조 및 특성" 한국고분자학회 42 (42): 736-746, 2018

      3 Chattopadhyay, D. K., "hermal Stability and Flame Retardancy of Polyurethanes" 34 : 1068-1133, 2009

      4 Elschenbroich, C. Organometallics, "Third Completely Revised and Extended Edition" Wiley-VCH 128 : 12029-12030, 2006

      5 Ginzburg, V. V., "Theoretical Modeling of the Relationship Between Young's Modulus and Formulation Variables for Segmented Polyurethanes" 45 : 2123-2135, 2007

      6 Suresh, K. I., "Synthesis, Structure, and Properties of Novel Polyols from Cardanol and Developed Polyurethanes" 44 : 4504-4512, 2005

      7 Mythili, C., "Synthesis, Mechanical, Thermal and Chemical Properties of Polyurethanes Based on Cardanol" 27 : 235-241, 2004

      8 Daniela Filip ; Doina Macocinschi ; Cristina Gabriela Tuchilus ; Mirela Fernanda Zaltariov ; Cristian Dragos Varganici, "Synthesis, Characterization of Erythromycin Propionate Core-Based Star Poly(ether urethane)s and Their Antibacterial Properties" 한국고분자학회 29 (29): 613-624, 2021

      9 Bresolin, D., "Synthesis of a Green Polyurethane Foam from a Biopolyol Obtained by Enzymatic Glycerolysis and its Use for Immobilization of Lipase NS-40116" 42 : 213-222, 2019

      10 김서현 ; 이주헌 ; 한학수, "Synthesis of UV Curable, Highly Stretchable, Transparent Poly(urethaneacrylate) Elastomer and Applications Toward Next Generation Technology" 한국고분자학회 28 (28): 896-902, 2020

      11 Wang, H., "Synthesis of Cardanol-based Polyols via Thiol-ene/thiol-epoxy Dual Click-reactions and Thermosetting Polyurethanes Therefrom" 6 : 12088-12095, 2018

      12 Choi, Y. S., "Synthesis and Characterization of Self-cross-linkable and Bactericidal Methacrylate Polymers Having Renewable Cardanol Moieties for Surface Coating Applications" 4 : 41195-41203, 2014

      13 Lomonaco, D., "Study of Technical CNSL and its Main Components as New Green Larvicides" 11 : 31-33, 2009

      14 Chun, B. C., "Structureproperty Relationship of Shape Memory Polyurethane Crosslinked by a Polyethyleneglycol Spacer Between Polyurethane Chains" 42 : 9045-, 2007

      15 Bo, C., "Structure and Thermal Properties of Phosphorus-containing Polyol Synthesized from Cardanol" 5 : 106651-106660, 2015

      16 Zafar, F., "Self-cured Polymers from Non-drying Oil" 2 : 285-294, 2008

      17 Suresh, K. I., "Rigid Polyurethane Foams from Cardanol: Synthesis, Structural Characterization, and Evaluation of Polyol and Foam Properties" 1 : 232-242, 2013

      18 Tan, S., "Ri gi d Polyurethane Foams from a Soybean Oil-based Polyol" 52 : 2840-2846, 2011

      19 Lapprand, A., "Reactivity of Isocyanates with Urethanes: Conditions for Allophanate Formation" 90 : 363-373, 2005

      20 Nguyen, T. K., "Rational Design of Single-chain Polymeric Nanoparticles that Kill Planktonic and Biofilm Bacteria" 3 : 237-248, 2017

      21 Li, S., "Preparation and Properties of Cardanol‐based Polybenzoxazine/SiO2 Hybrids by Sol‐gel Technique" 128 : 4164-4171, 2013

      22 Desai, S. D., "Polyurethane Adhesive System from Biomaterial-based Polyol for Bonding Wood" 23 : 393-399, 2003

      23 Xu, Y., "Phenolic Compounds, Antioxidant, and Antibacterial Properties of Pomace Extracts from Four Virginia‐grown Grape Varieties" 4 : 125-133, 2016

      24 Ma, T. Y., "PEG 400, a Hydrophilic Molecular Probe for Measuring Intestinal Permeability" 98 : 39-46, 1990

      25 Yoo, S. R., "Orientation and Phase Separated Structure of Polyurethanes Having Various Chemical Structures." 21 : 467-479, 1997

      26 Feng, J., "One-pot Synthesis of Cardanol derived High-efficiency Antioxidants Based on Intramolecular Synergism" 5 : 3399-3408, 2017

      27 Choi, Y. S., "Musselinspired Dopamine-and Plant-based Cardanol-containing Polymer Coatings for Multifunctional Filtration Membranes." 6 : 21297-21307, 2014

      28 Indumathi, M., "Mahua Oil-based Polyurethane/chitosan/nano ZnO Composite Films for Biodegradable Food Packaging Applications" 124 : 163-174, 2019

      29 Cocks, L. V., "Laboratory handbook for oil and fat analysts" 1966

      30 Pawlik, H., "Influence of Palm Oil-based Polyol on the Properties of Flexible Polyurethane Foams" 20 : 438-445, 2012

      31 Zhang, C., "High Biobased Carbon Content Polyurethane Dispersions Synthesized from Fatty Acid based Isocyanate" 58 : 5195-5201, 2019

      32 Kil, H. B., "Evaluation of Thermal and Mechanical Properties of High Temperature Resin" 22-23, 201

      33 Dutta, S., "Effect of the NCO/OH Ratio on the Properties of Mesua Ferrea L. seed Oil‐modified Polyurethane Resins" 55 : 49-56, 2006

      34 Korley, L. T. J., "Effect of the Degree of Soft and Hard Segment Ordering on the Morphology and Mechanical Behavior of Semicrystalline Segmented Polyurethanes" 47 : 3073-3082, 2006

      35 Zhang, Q., "Effect of Phenol on the Synthesis of Benzoxazine" 5 : 03203-103209, 2015

      36 Kathalewar, M., "Effect of Molecular Weight of Phenalkamines on the Curing, Mechanical, Thermal and Anticorrosive Properties of Epoxy Based Coatings" 84 : 79-88, 2015

      37 Yin, F., "Effect of Different Peroxide Initiators on the Reaction Extrusion of Polypropylenegraft-cardanol and its Compatibilization on PP/PC" 21 : 411-, 2014

      38 Alam, M., "Development of Anticorrosive Poly(ether-urethane) Amide Coatings from Linseed Oil: A Sustainable Resource" 18 : 208-215, 2010

      39 Niyogi, S., "Catalytic Activity of DBTDL in Polyurethane Formation" 9 : 330-333, 2002

      40 Balgude, D., "CNSL: An Environment Friendly Alternative for the Modern Coating Industry" 11 : 169-183, 2014

      41 Zhang, C., "Biobased Polyurethanes Prepared from Different Vegetable Oils" 7 : 1226-1233, 2015

      42 Aggarwal, L., "Anticorrosive Properties of the Epoxy-cardanol Resin Based Paints" 59 : 76-80, 2007

      43 Choi, Y. S., "Antibacterial and Biocompatible ABA-triblock Copolymers Containing Perfluoro polyether and Plant-based Cardanol for Versatile Coating Applications" 7 : 38091-38099, 2017

      44 Mishra, V., "(UV/Oxidative) Dual Curing Polyurethane Dispersion from Cardanol Based Polyol: Synthesis and Characterization" 111 : 165-178, 2018

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2012-06-04 학술지명변경 외국어명 : 미등록 -> POLYMER(KOREA) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2004-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2001-07-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      1999-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.58 0.47 0.5
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.45 0.43 0.401 0.13
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