Sungkyunkwan University · Materials Science
Kotiba Hamad 교수의 연구실은 생분해성 고분자, 특히 폴리락티드산(PLA)을 중심으로 한 고분자 혼합체 및 복합재료의 개발에 주력하고 있습니다. 고분자 혼합물의 유동성, 기계적·열적 특성 향상 및 응용 가능성을 높이기 위한 레오로지 및 공정 설계에 초점을 맞추고 있으며, 특히 PLA와 LDPE 등의 혼합체를 통해 경제성과 가공성 향상을 도모하고 있습니다. 또한, 신소재 개발을 위한 기계학습 기반 예측 모델링과 금속 합금의 기계적 성질 개선 기법 등 다학제적 연구도 진행하고 있습니다.
Figures are computed from collected data and may differ slightly.
Polylactic acid (PLA), one of the well-known biodegradable polyesters, has been studied extensively for tissue engineering and drug delivery systems, and it was also used widely in human medicine. A new method to synthesize PLA (ring-opening polymerization), which allowed the economical production of a high molecular weight PLA polymer, broadened its applications, and this processing would be a potential substitute for petroleum-based products. This review described the principles of the polymer
Biodegradable polymers belong to a family of polymer materials that found applications ranged from medical applications including tissue engineering, wound management, drugs delivery, and orthopedic devices, to packaging and films applications. For broadening their potential applications, biodegradable polymers are modified utilizing several methods such as blending and composites forming, which lead to new materials with unique properties including high performance, low cost, and good processab
In this work, rheological properties of poly (lactic acid) (PLA), low density polyethylene (LDPE) polymer blends were investigated in the molten state. The experiments were carried on a capillary rheometer. The effect of shear stress, temperature and blending ratio on the flow activation energy at a constant shear stress and melt viscosity of the blends are described. The results showed that the PLA/LDPE polymer blends are pseudo plastic in nature, where there viscosity decreases with increasing
Magnesium alloys have recently attracted great interest due their lightweight and high specific strength. However, because of their hexagonal close-packed structure, they have few active slip systems, resulting in poor ductility and high mechanical anisotropy at room temperature. In the present work, we used a cross-shear deformation imposed by a differential speed rolling (DSR) technique to improve the room temperature strength and ductility of AZ31 magnesium alloy sheets. To introduce the cros
In the present work, we used machine learning (ML) techniques to build a crystal-based model that can predict the lattice thermal conductivity (LTC) of crystalline materials. To achieve this, first, LTCs of 119 compounds at various temperatures (100-1000 K) were obtained based on density functional theory (DFT) and phonon calculations, and then, these data were employed in the next learning process to build a predictive model using various ML algorithms. The ML results showed that the model buil
ABSTRACT Poly(lactic acid) (PLA) was melt blended with low density polyethylene (LDPE) with the aim of replacing commodity polymers in future applications. Because cost of PLA is quite high, it is not economically feasible to use it alone for day to day use as a packaging material without blending. In this work, PLA was blended with LDPE in different ratios by using a laboratory scale single screw extruder. The prepared blends were characterized in terms of rheological and mechanical properties.
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