• 제목/요약/키워드: Silicon carbide-titanium carbide composite

검색결과 4건 처리시간 0.017초

정전기적 자가결합법으로 제조된 2차원 티타늄 카바이드(MXene)/실리콘 음극 복합소재의 전기화학적 특성 (Electrochemical Characteristics of 2-Dimensional Titanium Carbide(MXene)/Silicon Anode Composite Prepared by Electrostatic Self-assembly)

  • 김동민;이종대
    • Korean Chemical Engineering Research
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    • 제62권3호
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    • pp.262-268
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    • 2024
  • 본 연구에서는 고성능 리튬이온전지용 음극 소재로써 2차원 구조의 티타늄 카바이드(MXene)와 나노 실리콘의 정전기적 결합을 통한 MXene/Si 음극 복합소재를 제조하였다. LiF/HCl을 이용하여 Ti3AlC2 MAX를 에칭해 Ti3C2Tx MXene을 제조하였으며, 정전기적 결합을 형성하기 위해 나노 실리콘의 표면을 CTAB (Cetyltrimethylammonium bromide)을 활용하여 양전하로 대전하였다. MXene/Si 음극 복합소재는 제조된 MXene과 대전 된 실리콘의 간단한 혼합 공정을 통해 성공적으로 제조되었다. 제조된 복합소재의 물리적 특성과 전기화학적 특성을 MXene과 실리콘의 조성비에 따라 조사하였으며, 전극의 안정성을 평가하기 위해 충·방전 사이클 후의 전극 표면을 분석하였다. MXene/Si 복합소재는 MXene 대비 실리콘 조성 비율이 2, 3 및 4로 증가할수록 1962.9, 2395.2 및 2504.3 mAh/g의 높은 초기 방전용량을 나타내었다. MXene과 실리콘 조성비가 1 : 4인 MXene/Si-4는 100 사이클에서 1387.5 mAh/g의 가역 용량과 74.5%의 용량 유지율을 나타내었으며, 4.0 C의 높은 율속에서도 700.5 mAh/g으로 높은 용량을 발현하였다. 이러한 결과를 통해 정전기적 결합으로 제조된 MXene/Si 복합소재는 고성능 리튬이온배터리용 음극소재로 적용 될 수 있다.

Effect of Additive Amount on Microstructure and Fracture Toughness of SiC-TiC Composites

  • Min-Jin Kim;Young-Wook Kim;Wonjoong Kim;Hun-Jin Lim;Duk-Ho Cho
    • The Korean Journal of Ceramics
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    • 제6권2호
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    • pp.91-95
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    • 2000
  • Powder mixtures of $\beta$-SiC-TiC in a weight ratio of 2:1 containing 5-20 wt% additives ($Al_2O_3$-$Y_2O_3$) were liquid-phase sintered at $1830^{\circ}C$ for 1h by hot-pressing and subsequently annealed at $1950^{\circ}C$ for 6h to enhance grain growth. The annealed specimens revealed a microstructure of \"in situ-toughened composite\" as a result of the $\beta$longrightarrow$\alpha$ phase transformation of SiC during annealing. The increase of the content of additives accelerated the growth of elongated $\alpha$-SiC grains with higher aspect ratio and improved fracture toughness. The fracture toughness of SiC-TiC composite containing 20 wt% additive was 6.2 MPa.$m^{1/2}$.2}$.

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고온가압소결한 SiC-TiC 복합체의 기계적, 전기적 특성 (Mechanical and Electrical Properties of Hot-Pressed Silicon Carbide-Titanium Carbide Composites)

  • 박용갑
    • 한국세라믹학회지
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    • 제32권10호
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    • pp.1194-1202
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    • 1995
  • The influences of TiC additions to the α-SiC on microstructural, mechanical, and electrical properties were investigated. Electrical discharge machinability of SiC-TiC composites was also studied. Samples were prepared by adding 30, 45, 60 wt.% TiC particles as a second phase to a SiC matrix. Sintering of SiC-TiC composites was done by hot pressing under a vacuum atmospehre from 1000 to 2000℃ with a pressure of 32 MPa and held for 90 minutes at 2000℃. Samples obtained by hot pressing were fully dense with the relative densities over 99% except 60wt.% TiC samples. Flexural strength and fracture toughness of the samples were increased with the TiC content. In case of SiC samples containing 45 wt.% TiC, the fracture toughness showed 90% increase compared to that of monolithic SiC sample. The crack propagation and crack deflection were observed with a SEM for etched samples after Vicker's indentation. The electrical resistivities of SiC-TiC composites were measured utilizing the four-point probe. The electrical dischage machining of composites was also conducted to evaluate the machinability.

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Microstructure, Mechanical and Wear Properties of Hot-pressed $Si_3N_4-TiC$ Composites

  • Hyun Jin Kim;Soo Whon Lee;Tadachika Nakayama;Koichi Niihara
    • The Korean Journal of Ceramics
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    • 제5권4호
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    • pp.317-323
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    • 1999
  • Si3N4-TiC composites have been known as electrically conductive ceramics. $Si_3N_4-TiC$ composites with 2 wt% $Al_2O_3$ and 4 wt% $Y_2O_3$ were hot pressed in $N_2$ environment. The mechanical properties including hardness, fracture toughness, and flexural strength and tribological properties were investigated as a function of TiC content. $Si_3N_4-40$ vol% TiC composite was hot pressed at $1,750^{\circ}C$, $1,800^{\circ}C$, and $1,850^{\circ}C$ for 1, 3 and 5 hours in $N_2$ gas. Mechanical and tribolgical properties depended on microstructures, which were controlled by hte TiC content, hot press temperature, and hot press holding time. However, mechanical properties and tribological behaviors were degraded by the chemical reaction between TiC and N. The chemically reacted products such as TiCN, SiC, and $SiO_2$ were detered by the X-ray diffraction analysis.

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