• 제목/요약/키워드: 2 Dimensional nanosheets

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은나노와이어와 2차원 구조 루테늄산화물 하이브리드 재료의 광전기적 특성 (Optoelectric properties of hybrid materials with Ag-nanowire and 2-dimensional structured RuO2)

  • 이정민;박희정
    • 한국결정성장학회지
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    • 제34권2호
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    • pp.55-60
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    • 2024
  • 화학적 박리법을 이용하여 나노미터 두께를 갖는 2차원(2D) RuO2 나노시트를 합성하였다. 차세대 투명전극 소재로 주목받고 있는 Ag-nanowire(NW)와 본 연구에서 합성된 2D-RuO2를 하이브리드화하였다. 기판 위에 Ag-NW 코팅 후 2D-RuO2를 추가로 코팅하였다. 광투과도의 감소는 있었지만 2D-RuO2를 하이브리드화하여 면저항 감소 효과를 확인할 수 있었다. 또한 제조된 투명전극의 유연성 실험도 진행하였다. 벤딩 후 면저항 변화로 확인하였다. 2D-RuO2의 추가 코팅으로 투명전극 유연성이 향상되었다.

Emerging Frontiers of Graphene in Biomedicine

  • Byun, Jonghoe
    • Journal of Microbiology and Biotechnology
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    • 제25권2호
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    • pp.145-151
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    • 2015
  • Graphene is a next-generation biomaterial with increasing biomedical applicability. As a new class of one-atom-thick nanosheets, it is a true two-dimensional honeycomb network nanomaterial that attracts interest in various scientific fields and is rapidly becoming the most widely studied carbon-based material. Since its discovery in 2004, its unique optical, mechanical, electronic, thermal, and magnetic properties are the basis of exploration of the potential applicability of graphene. Graphene materials, such as graphene oxide and its reduced form, are studied extensively in the biotechnology arena owing to their multivalent functionalization and efficient surface loading with various biomolecules. This review provides a brief summary of the recent progress in graphene and graphene oxide biological research together with current findings to spark novel applications in biomedicine. Graphene-based applications are progressively developing; hence, the opportunities and challenges of this rapidly growing field are discussed together with the versatility of these multifaceted materials.

MoS2의 형상변조를 통한 광전기화학 성능 촉진 (Promoting Photoelectrochemical Performance Through the Modulation of MoS2 Morphology)

  • 서동범;김의태
    • 한국재료학회지
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    • 제32권1호
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    • pp.30-35
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    • 2022
  • The development of advanced materials to improve the efficiency of photoelectrochemical (PEC) water splitting paves the way for widespread renewable energy technologies. Efficient photoanodes with strong absorbance in visible light increases the effectiveness of solar energy conversion systems. MoS2 in a two-dimensional semiconductor that has excellent absorption performance in visible light and high catalytic activity, showing considerable potential as an agent of PEC water splitting. In this study, we successfully modulated the MoS2 morphology on indium tin oxide substrate by using the metalorganic chemical vapor deposition method, and applied the PEC application. The PEC photocurrent of the vertically grown MoS2 nanosheet structure significantly increased relative to that of MoS2 nanoparticles because of the efficient transfer of charge carriers and high-density active sites. The enhanced photocurrent was attributed to the efficient charge separation and improved light absorption of the MoS2 nanosheet structure. Meanwhile, the photocurrent property of thick nanosheets decreased because of the limit imposed by the diffusion lengths of carriers. This study proposes a valuable photoelectrode design with suitable nanosheet morphology for efficient PEC water splitting.

Photocatalytic Generated Oxygen Species Properties by Fullerene Modified Two-Dimensional MoS2 and Degradation of Ammonia Under Visible Light

  • Zou, Cong-Yang;Meng, Ze-Da;Zhao, Wei;Oh, Won-Chun
    • 한국재료학회지
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    • 제31권6호
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    • pp.353-366
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    • 2021
  • In this study, photocatalytic degradation of ammonia in petrochemical wastewater is investigated by solar light photocatalysis. Two-dimensional ultra-thin atomic layer structured MoS2 are synthesized via a simple hydrothermal method. We examine all prepared samples by means of physical techniques, such as SEM-EDX, HRTEM, FT-IR, BET, XRD, XPS, DRS and PL. And, we use fullerene modified MoS2 nanosheets to enhance the activity of photochemically generated oxygen (PGO) species. Surface area and pore volumes of the MoS2-fullerene samples significantly increase due to the existence of MoS2. And, PGO oxidation of MB, TBA and TMST, causing its concentration in aqueous solution to decrease, is confirmed by the results of PL. The generation of reactive oxygen species is detected through the oxidation reaction from 1,5-diphenyl carbazide (DPCI) to 1,5-diphenyl carbazone (DPCO). It is found that the photocurrent density and the PGO effect increase in the case with modified fullerene. The experimental results show that this heterogeneous catalyst has a degradation of 88.43% achieved through visible light irradiation. The product for the degradation of NH3 is identified as N2, but not NO2- or NO3-.

Reduced graphene oxide field-effect transistor for biomolecule detection and study of sensing mechanism

  • Kim, D.J.;Sohn, I.Y.;Kim, D.I.;Yoon, O.J.;Yang, C.W.;Lee, N.E.;Park, J.S.
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2011년도 제40회 동계학술대회 초록집
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    • pp.431-431
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    • 2011
  • Graphene, two dimensional sheet of sp2-hybridized carbon, has attracted an enormous amount of interest due to excellent electrical, chemical and mechanical properties for the application of transparent conducting films, clean energy devices, field-effect transistors, optoelectronic devices and chemical sensors. Especially, graphene is promising candidate to detect the gas molecules and biomolecules due to the large specific surface area and signal-to-noise ratios. Despite of importance to the disease diagnosis, there are a few reports to demonstrate the graphene- and rGO-FET for biological sensors and the sensing mechanism are not fully understood. Here we describe scalable and facile fabrication of rGO-FET with the capability of label-free, ultrasensitive electrical detection of a cancer biomarker, prostate specific antigen/${\alpha}1$-antichymotrypsin (PSA-ACT) complex, in which the ultrathin rGO sensing channel was simply formed by a uniform self-assembly of two-dimensional rGO nanosheets on aminated pattern generated by inkjet printing. Sensing characteristics of rGO-FET immunosensor showed the highly precise, reliable, and linear shift in the Dirac point with the analyte concentration of PSA-ACT complex and extremely low detection limit as low as 1 fg/ml. We further analyzed the charge doping mechanism, which is the change in the charge carrier in the rGO channel varying by the concentration of biomolecules. Amenability of solution-based scalable fabrication and extremely high performance may enable rGO-FET device as a versatile multiplexed diagnostic biosensor for disease biomarkers.

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초박막 두께의 Nb-TiOx 나노시트 합성 (The synthesis of ultrathin Nb-doped TiOx nanosheets)

  • 이상은;서준;박희정
    • 한국결정성장학회지
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    • 제30권5호
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    • pp.194-199
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    • 2020
  • 2차원 층상결정구조를 갖는 금속산화물 나노시트의 조성을 제어함으로써 재료 물성 및 응용의 확장이 가능하다. 본 연구에서 니오비움(Nb)이 도핑 된 타이타늄산화물(TiOy) 나노시트 합성에 성공함으로써 나노시트의 조성을 순수조성에서 도핑조성으로 확장할 수 있었다. 상세하게는 출발 물질인 층상 구조 금속산화물 합성 시 도핑 조성을 설계(K0.8Ti1.73-xNbxLi0.27O4, x = 0, 0.03, 0.07)하고 고상 합성한 후 유기물처리를 통한 화학적 박리를 수행하였다. 이렇게 함으로써 니오비움이 도핑 된 타이타늄산화물 초박막 나노시트를 수득할 수 있었다. 나노시트의 크기는 x-y 방향에서 긴 길이 기준으로 2 ㎛ 이하였으며 두께(z 방향)는 약 1 nm였다. 니오비움의 도핑 여부는 XRD 및 SEM-EDS 분석을 통해 확인할 수 있었다.