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고분자 도포를 이용한 실리콘-탄소의 합성 및 Si-C|Li Cell의 전기화학적 특성
도칠훈,정기영,진봉수,안계혁,민병철,최임구,박철완,이경직,문성인,윤문수,Doh, Chil-Hoon,Jeong, Ki-Young,Jin, Bong-Soo,An, Kay-Hyeok,Min, Byung-Chul,Choi, Im-Goo,Park, Chul-Wan,Lee, Kyeong-Jik,Moon, Seong-In,Yun, Mun-Soo 한국전기화학회 2006 한국전기화학회지 Vol.9 No.3
실리콘 분말에 polyaniline(PAn)을 중합하고 탄화하여 Si-C재료를 개발하고 물리적 특성 및 전기화학적 특성을 분석하였다. 평균입도는 PAn의 중합으로 증가하였으며 탄화로 일부 감소하였다. XRD분석으로 결정질의 실리콘과 비결정성의 탄소 재료가 공존함을 확인 하였다. Si-PAn 전구체로 부터 개발한 Si-C 재료를 이용한 Si-C|Li cell은 Si|Li cell에 비하여 우수한 특성을 나타내었으며, 탄소 전구체인 PAn의 HCl 탈도핑에 의해 전기화학적 특성을 개선할 수 있었다. 전해액 중 FEC 첨가한 경우 초기 방전 용량이 증가하였다. GISOC시험으로 구한 가역 비용량 범위는 Si-C(Si:PAn=50:50wt. ratio)|Li 전지의 경우 약 414mAh/g를 나타내었으며, 가역 범위에 대한 초기 충방전의 intercalation 효율(IIE)는 75.7%였으며, 표면 비가역 비용량은 35.4mAh/g을 나타내었다. Si-C composites were prepared by the carbonization of silicon powder covered by polyaniline(PAn). Physical and electrochemical properties of the Si-C composites were characterized by the particle size analysis, X-ray diffraction technique, scanning electron microscope, and electrochemical test of battery. The average particle size of the Si was increased by the coating of PAn and somewhat reduced by the carbonization to give silicone-carbon composites. XRD analysis' results were confirmed co-existence of crystalline silicon and amorphous-like carbon. SEM photos showed that the silicon particle were well covered with carbonacious materials depend on the PAn content. Si-C|Li cells were fabricated using the Si-C composites and were tested using the galvanostatic charge-discharge test. Si-C|Li cells gave better electrochemical properties than that of Si|Li cell. Si-C|Li cell using the Si-C from HCl undoped PAn Precursor showed better electrochemical properties than that from HCl doped PAn Precursor. Using the electrolyte containing FEC as an additive, the initial discharge capacity was increased. After that the galvanostatic charge-discharge test with the GISOC(gradual increasing of the state of charge) condition was carried out. Si-C(Si:PAn:50:50 wt. ratio)|Li cell showed 414 mAh/g of the reversible specific capacity, 75.7% of IIE(initial intercalation efficiency), 35.4 mAh/g of IICs(surface irreversible specific capacity).
Hydrogen Storage Behaviors of Porous Carbons
김병주(Kim, Byung-Joo),안계혁(An, Kay-Hyeok),박수진(Park, Soo-Jin) 한국신재생에너지학회 2009 한국신재생에너지학회 학술대회논문집 Vol.2009 No.11
In this work, Porous Carbons (PCs) were prepared by using a chemical acid treatment, and the hydrogen storage behaviors of PCs doped by Pt nanoparticles were investigated. The hydrogen storage capacities of the Pt-doped carbons with a platinum content of 0.2 - 1.5 wt.% were evaluated by a volumetric adsorption method at 298K and 10 MPa. The microstructures of samples were examined by XRD and SEM. It was found that the hydrogen storage capacitiesof the PCs dramatically increased, but the amount of hydrogen stored from the samples began to decrease after 0.6 wt.% of Pt content due to the pore blocking. These results indicate that a suitable amount of supported catalysts and layer intervals of carbons had a very important impact on hydrogen storage behaviors.
니켈 코팅된 탄소나노튜브/산화아연 나노복합소재의 제조와 항균 및 기계적 특성 분석
김현혜 ( Hyeon-hye Kim ),한웅 ( Woong Han ),안계혁 ( Kay-hyeok An ),김병주 ( Byung-joo Kim ) 한국공업화학회 2016 공업화학 Vol.27 No.5
본 연구에서는 탄소나노튜브, 니켈 및 산화아연의 항균특성 활용을 목적으로 새로운 항균 나노 복합 재료를 개발하였 다. 니켈 코팅된 탄소나노튜브의 제조 및 그들의 동시발생 집중 및 비활성 세균에 대한 항균소재의 잠재적 응용성을 평가하였다. 제조된 니켈 도금 탄소나노튜브의 형상 및 니켈 도금은 전계 방출 주사전자현미경(FE-SEM) 및 X선 에너 지 분산 분광기(EDS)를 사용하여 분석하였다. 나노복합소재의 항균 특성을 확인할 수 있는 타깃 세균은 황색포도상구 균과 대장균으로 지정하였다. 니켈 도금된 탄소나노튜브와 산 처리된 탄소나노튜브로 각각 강화된 나노복합소재의 황색포도상구균 및 대장균에 대한 항균특성을 비교하였을 때, 니켈 도금된 탄소나노튜브/산화아연으로 강화된 나노복 합소재의 항균 특성이 더 우수한 결과를 보이는 것을 확인할 수 있었다. 이러한 결과에 따라서, 탄소나노튜브 표면에 도금된 니켈이 복합소재 내에서 세균의 살균 작용에 중요한 역할을 하는 것으로 판단할 수 있다. 또한, 첨가된 산화아 연은 나노복합소재의 항균특성 향상을 목적으로 제안되었다. This study was conducted to develop novel antimicrobial nano-composites, with the aim of fully utilizing antimicrobial properties of multi-walled carbon nanotubes (MWCNTs), nickel (Ni) and zinc oxide (ZnO). Ni coated-MWCNTs (Ni-CNT) were prepared and evaluated for their potential application as an antimicrobial material for inactivating bacteria. Field emission scanning electron microscopy (FE-SEM), and X-ray energy dispersive spectroscopy (EDS) were used to characterize the Ni coating and morphology of Ni-CNT. Staphylococcus aureus (S. aureus) and Escherichia coil (E. coil) were employed as the target bacterium on antimicrobial activities. Comparing with the nitric acid treated MWCNTs and Ni-CNT which have been previously reported to possess antimicrobial activity towards S. aureus and E. coil, Ni-CNT/ZnO exhibited a stronger antimicrobial ability. The nickel coating was confirmed to play an important role in the bactericidal action of Ni-CNTs/ZnO composites. Also, the addition of ZnO to the developed nanocomposite is suggested to improve the antimicrobial property.
탄소섬유의 오존처리가 나일론6 기지 복합재료의 크랙저항에 미치는 영향
한웅 ( Woong Han ),최웅기 ( Woong Ki Choi ),안계혁 ( Kay Hyeok An ),김홍건 ( Hong Gun Kim ),강신재 ( Shin Jae Kang ),김병주 ( Byung Joo Kim ) 한국공업화학회 2013 공업화학 Vol.24 No.4
In this work, the effects of ozone treatments on mechanical interfacial properties of carbon fibers-reinforced nylon 6 matrix composites were investigated. The surface properties of ozone treated carbon fibers were studied by Fourier transform infrared spectroscopy (FT-IR) and X-ray photoelectron spectroscopy (XPS). Mechanical interfacial properties of the composites were investigated using critical stress intensity factor (KIC). The cross-section morphologies of ozone-treated carbon fiber/nylon-6 composites were observed by scanning electron microscope (SEM). As a result, KIC of the ozone-treated carbon fiber -reinforced composites showed higher values than those of as-received carbon fibers-reinforced composites due the enhanced O1s/C1s ratio of the carbon fiber by the ozone treatments. This result concludes that the mechanical interfacial properties of nylon-6 matrix composites can be controlled by suitable ozone treatments on the carbon fibers.