• Title/Summary/Keyword: chemical doping

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Electrical Doping of Graphene Films by Hybridization of Nickel Nanoparticles

  • Lee, Su-Il;Song, U-Seok;Kim, Yu-Seok;Cha, Myeong-Jun;Jeong, Dae-Seong;Jeong, Min-Uk;Jeon, Cheol-Ho;Park, Jong-Yun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.403-403
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    • 2012
  • 그래핀(graphene)은 우수한 전기적, 물리적인 특성을 지닌 물질로써 다양한 분야에서 이를 활용하려는 노력들이 활발히 진행되고 있다. 그중 그래핀을 채널로 이용하는 전계효과 트랜지스터(field effect transistor)로의 응용에 있어, 가장 핵심적인 도전과제는 전하농도(carrier concentration)의 제어 및 에너지 밴드갭(energy bandgap) 형성이라 할수 있다. 최근 다양한 물질을 이용한 도핑을 통해 이를 해결하기 위한 노력들이 진행되고 있는 추세이다. 본 연구에서는 열화학 기상 증착법(Thermal chemical vapor deposition)을 통해 합성된 단일층의 그래핀에 염화니켈 나노입자의 분산액을 스핀코팅 한후 열처리를 통해 그래핀-니켈 나노입자의 하이브리드 구조를 제작하였다. 제작된 그래핀-니켈 나노입자 하이브리드 물질의 구조적 특징을 주사 전자 현미경(Scanning electron microscope)과 원자힘 현미경(Atomic force microscopy)을 통하여 확인하였다. 또한 니켈 분산액의 농도와 도핑효과 와의 상관관계를 라만분광법(Raman spectroscopy)과 이온성 용액법(Ionic liquid)을 이용한 전계효과 특성분석을 통해 조사하였다. 나노입자의 형성 메커니즘은 X-선 광전자 분광법(X-ray photoelectron spectroscopy)을 통하여 규명하였다.

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Nano-gap Trench Etching using Forward Biased PN Junction for High Performance MEMS Devices (고성능 MEMS 소자를 위한 순방향 전극이 걸린 PN 접합을 이용한 나노 간격 홈의 식각)

  • Jeong, Jin-Woo;Kim, Hyeon-Cheol;Chun, Kuk-Jin
    • Proceedings of the IEEK Conference
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    • 2005.11a
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    • pp.833-836
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    • 2005
  • Nano-gap trench is fabricated by the novel electrochemical etching technique using forward biased PN junction formed at the backside of the wafer. PN junction is formed using boron nitride wafer and the concentration of the boron doping is the high value of $1{\times}10^{19}$ $cm^{-3}$. The electro-chemical etching is performed in the 5% HF solution under the forward bias voltage of $1{\sim}2V$. The relationship between the etch rate of the trench and the voltage of the forward bias is investigated and the dependence of the gap for the voltage also examined. The etch rate increase from 0.027 ${\mu}m/min$ to 0.031 ${\mu}m/min$ as the value of the applied voltage increase from 1V to 2V, but the the gap is kept constant value of 40 nm.

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Fabrication of polycrystalline 3C-SiC diode for harsh environment micro chemical sensors and their characteristics (극한 환경 마이크로 화학센서용 다결정 3C-SiC 다이오드 제작과 그 특성)

  • Shim, Jae-Cheol;Chung, Gwiy-Sang
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.06a
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    • pp.195-196
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    • 2009
  • This paper describes the fabrication and characteristics of polycrystalline 3C-SiC thin film diodes for extreme environment applications, in which the this thin film was deposited onto oxidized Si wafers by APCVD using HMDS In this work, the optimized growth temperature and HMDS flow rate were $1,100^{\circ}C$ and 8sccm, respectively. A Schottky diode with a Au, Al/poly 3C-SiC/$SiO_2$/Si(n-type) structure was fabricated and its threshold voltage ($V_d$), breakdown voltage, thickness of depletion layer, and doping concentration ($N_D$) values were measured as 0.84V, over 140V, 61nm, and $2.7{\times}10^{19}cm^2$, respectively. To produce good ohmic contact, Al/3C-SiC were annealed at 300, 400, and $500^{\circ}C$ for 30min under a vacuum of $5.0{\times}10^{-6}$Torr. The obtained p-n junction diode fabricated by poly 3C-SiC had similar characteristics to a single 3C-SiC p-n junction diode.

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Synthesis of Nitrogen Doped Protein Based Carbon as Pt Catalysts Supports for Oxygen Reduction Reaction (산화환원반응용 백금 촉매 지지체를 위한 질소 도핑된 단백질계 탄소의 제조)

  • Lee, Young-geun;An, Geon-hyeong;Ahn, Hyo-Jin
    • Korean Journal of Materials Research
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    • v.28 no.3
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    • pp.182-188
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    • 2018
  • Nitrogen (N)-doped protein-based carbon as platinum (Pt) catalyst supports from tofu for oxygen reduction reactions are synthesized using a carbonization and reduction method. We successfully prepare 5 wt% Pt@N-doped protein-based carbon, 10 wt% Pt@N-doped protein-based carbon, and 20 wt% Pt@N-doped protein-based carbon. The morphology and structure of the samples are characterized by field emission scanning electron microscopy and transmission electron micro scopy, and crystllinities and chemical bonding are identified using X-ray diffraction and X-ray photoelectron spectroscopy. The oxygen reduction reaction are measured using a linear sweep voltammogram and cyclic voltammetry. Among the samples, 10 wt% Pt@N-doped protein-based carbon exhibits exellent electrochemical performance with a high onset potential of 0.62 V, a high $E_{1/2}$ of 0.55 V, and a low ${\Delta}E_{1/2}=0.32mV$. Specifically, as compared to the commercial Pt/C, the 10 wt% Pt@N-doped protein-based carbon had a similar oxygen reduction reaction perfomance and improved electrochemical stability.

Nanoscale Pyramid Texture for High Efficiency Multi-Crystalline Silicon Solar Cells (고효율 다결정 실리콘 태양전지 제작을 위한 나노크기의 피라미드 텍스쳐 제작)

  • Heo, Jong;Park, Min-Joon;Jee, Hong sub;Kim, Jin Hyeok;Jeong, Chaehwan
    • Current Photovoltaic Research
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    • v.5 no.1
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    • pp.25-27
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    • 2017
  • Nanoscale textured black silicon has attracted intensive attention due to its great potential as applications in multicrystalline silicon-based solar cells. It absorbs sunlight over a broad range of wavelengths but introduces large recombination centers, non-uniform doping into cell. In this study, we present a metal-assisted chemical etching technique plus alkaline etching process to fabricate nanoscale pyramid structures with optimized condition. To make the structures, silver nanoparticles-loaded mc-Si wafer was submerged into $H_2O_2/HF$ solution first for nanohole texturing the wafer and textured wafer etched again with KOH solution for making nanoscale pyramid structures. The average reflectivity (350-1050 nm) is about 8.42% with anti-reflection coating.

Effect of Fe3O4 loading on the conductivities of carbon nanotube/chitosan composite films

  • Marroquin, Jason;Kim, H.J.;Jung, Dong-Ho;Rhee, Kyong-Yop
    • Carbon letters
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    • v.13 no.2
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    • pp.126-129
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    • 2012
  • Nanocomposite films were made by a simple solution casting method in which multi-walled carbon nanotubes (MWCNT) and magnetite nanoparticles ($Fe_3O_4$) were used as dopant materials to enhance the electrical conductivity of chitosan nanocomposite films. The films contained fixed CNT concentrations (5, 8, and 10 wt%) and varying $Fe_3O_4$ content. It was determined that a 1:1 ratio of CNT to $Fe_3O_4$ provided optimal conductivity according to dopant material loading. X-ray diffraction patterns for the nanocomposite films, were determined to investigate their chemical and phase composition, revealed that nanoparticle agglomeration occurred at high $Fe_3O_4$ loadings, which hindered the synergistic effect of the doping materials on the conductivity of the films.

A review on the understanding and fabrication advancement of MgB2 thin and thick films by HPCVD

  • Ranot, Mahipal;Duong, P.V.;Bhardwaj, A.;Kang, W.N.
    • Progress in Superconductivity and Cryogenics
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    • v.17 no.2
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    • pp.1-17
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    • 2015
  • $MgB_2$ thin films with superior superconducting properties are very promising for superconducting magnets, electronic devices and coated conductor electric power applications. A clear understanding of flux pinning mechanism in $MgB_2$ films could be a big aid in improving the performance of $MgB_2$ by the enhancement of $J_c$. The fabrication advancement and the understanding of flux pinning mechanism of $MgB_2$ thin and thick films fabricated by using hybrid physical-chemical vapor deposition (HPCVD) are reviewed. The distinct kind of $MgB_2$ films, such as single-crystal like $MgB_2$ thin films, $MgB_2$ epitaxial columnar thick films, and a-axis-oriented $MgB_2$ films are included for flux pinning mechanism investigation. Various attempts made by researchers to improve further the flux pinning property and $J_c$ performance by means of doping in $MgB_2$ thin films by using HPCVD are also summarized.

Low-Temperature Solution Process of Al-Doped ZnO Nanoflakes for Flexible Perovskite Solar Cells

  • Nam, SeongSik;Vu, Trung Kien;Le, Duc Thang;Oh, Ilwhan
    • Journal of Electrochemical Science and Technology
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    • v.9 no.2
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    • pp.118-125
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    • 2018
  • Herein we report on the selective synthesis and direct growth of nanostructures using an aqueous chemical growth route. Specifically, Al-doped ZnO (AZO) nanoflakes (NFs) are vertically grown on indium tin oxide (ITO) coated flexible polyethylene terephthalate (PET) sheets at low temperature and ambient environment. The morphological, optical, and electrical properties of the NFs are investigated as a function of the Al content. Furthermore, these AZO-NFs are integrated into perovskite solar devices as the electron transport layer (ETL) and the fabricated devices are tested for photovoltaic performance. It was determined that the doping of AZO-NFs significantly increases the performance metrics of the solar cells, mainly by increasing the short-circuit current of the devices. The observed enhancement is primarily attributed to the improved conductivity of the doped AZO-NF, which facilitates charge separation and reduces recombination. Further, our flexible solar cells fabricated through this low temperature process demonstrate an acceptable reproducibility and stability when exposed to a mechanical bending test.

Li:Al cathode layer and its influence on interfacial energy level and efficiency in polymer-based photovoltaics

  • Park, Sun-Mi;Jeon, Ji-Hye;Park, O-Ok;Kim, Jeong-Won
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.08a
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    • pp.72-72
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    • 2010
  • Recent development of organic solar cell approaches the level of 8% power conversion efficiency by the introduction of new materials, improved material engineering, and more sophisticated device structures. As for interface engineering, various interlayer materials such as LiF, CaO, NaF, and KF have been utilized between Al electrode and active layer. Those materials lower the work function of cathode and interface barrier, protect the active layer, enhance charge collection efficiency, and induce active layer doping. However, the addition of another step of thin layer deposition could be a little complicated. Thus, on a typical solar cell structure of Al/P3HT:PCBM/PEDOT:PSS/ITO glass, we used Li:Al alloy electrode instead of Al to render a simple process. J-V measurement under dark and light illumination on the polymer solar cell using Li:Al cathode shows the improvement in electric properties such as decrease in leakage current and series resistance, and increase in circuit current density. This effective charge collection and electron transport correspond to lowered energy barrier for electron transport at the interface, which is measured by ultraviolet photoelectron spectroscopy. Indeed, through the measurement of secondary ion mass spectroscopy, the Li atoms turn out to be located mainly at the interface between polymer and Al metal. In addition, the chemical reaction between polymer and metal electrodes are measured by X-ray photoelectron spectroscopy.

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Development of Nano Crystal Embedded Polymorphous Silicon Thin Film by Neutral Beam Assisted CVD Process at Room Temperature

  • Jang, Jin-Nyoung;Lee, Dong-Hyeok;So, Hyun-Wook;Yoo, Suk-Jae;Lee, Bon-Ju;Hong, Mun-Pyo
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.171-171
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    • 2012
  • Neutral beam assisted chemical vapor deposition (NBa-CVD) process has been developed as a nove,l room temperature deposition process for the light-soaking free nano-crystalline silicon (nc-Si) thin films including intrinsic and n-type doped thin film. During formation of nc-Si thin films by the NBa-CVD process with silicon reflector at room temperature, the energetic particles enhance doping efficiency and crystalline phase in nc-Si thin films without additional heating at substrate. The effects of incident NB energy controlled by the reflector bias have been confirmed by Raman spectra analysis. Additionally, TEM images show uniform nc-Si grains which imbedded amorphous phase without incubation layer. The nc-Si films by the NBa-CVD are hardly degenerated by light soaking; the degradations of photoconductivity were just a few percents before and after light irradiation.

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