http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.
변환된 중국어를 복사하여 사용하시면 됩니다.
전기화학증착법으로 양극산화 알루미늄(AAO) 템플레이트를 이용한 Ni 나노와이어의 제조 및 성장에 관한 연구
심성주,조권구,김유영,Sim, Seong-Ju,Cho, Kwon-Koo,Kim, Yoo-Young 한국분말야금학회 2011 한국분말재료학회지 (KPMI) Vol.18 No.1
Ni nanowires were fabricated using anodic aluminum oxide (AAO) membrane as a template by electrochemical deposition. The nanowires were formed within the walls of AAO template with 200 nm in pore diameter. After researching proper voltage and temperature for electrochemical deposition, the length of Ni nanowires was controlled by deposition time and the supply of electrolyte. The morphology and microstructure of Ni nanowires were investigated by field emission scanning electron microscope (FE-SE), X-ray diffraction (XRD) and transmission electron microscope (TEM).
화학적 기상 응축(CVC)법을 이용한 철-몰리브덴합금 나노 입자와 와이어의 제조
하종근,조권구,김기원,류광선,Ha, Jong-Keun,Cho, Kwon-Koo,Kim, Ki-Won,Ryu, Kwang-Sun 한국분말야금학회 2010 한국분말재료학회지 (KPMI) Vol.17 No.3
Iron(Fe)-Molybdenum(Mo) alloyed nanoparticles and nanowires were produced by the chemical vapor condensation(CVC) process using the pyrolysis of iron pentacarbonyl($Fe(CO)_5$) and Molybdenum hexacarbonyl($Mo(CO)_6$). The influence of CVC parameter on the formation of nanoparticle, nanowire and size control was studied. The size of Fe-Mo alloyed nanoparticles can be controlled by quantity of gas flow. Also, Fe-Mo alloyed nanowires were produced by control of the work chamber pressure. Moreover, we investigated close correlation of size and morphology of Fe-Mo nanoparticles and nanowires with atomic quantity of inflow precursor into the electric furnace as the quantitative analysis. Obtained nanoparticles and nanowires were investigated by field emission scanning electron microscopy, energy dispersive spectroscopy and X-ray diffraction.
양극산화법에 의한 TiO<sub>2</sub> 나노튜브 어레이의 제조 및 광전기화학적 특성에 관한 연구
김선민,조권구,최영진,김기원,류광선,Kim, Seon-Min,Cho, Kwon-Koo,Choe, Yeong-Jin,Kim, Ki-Won,Ryu, Kwang-Sun 한국분말야금학회 2010 한국분말재료학회지 (KPMI) Vol.17 No.3
Self-standing $TiO_2$ nanotube arrays were fabricated by potentiostatic anodic oxidation method using pure Ti foil as a working electrode and ethylene glycol solution as electrolytes with small addition of $NH_4F$ and $H_2O$. The influences of anodization temperature and time on the morphology and formation of $TiO_2$ nanotube arrays were investigated. The fabricated $TiO_2$ nanotube arrays were applied as a photoelectrode to dye-sensitized solar cells. Regardless of anodizing temperature and time, the average diameter and wall thickness of $TiO_2$ nanotube show a similar value, whereas the thickness show a different trend with reaction temperature. The thickness of $TiO_2$ nanotube arrays anodized at $20^{\circ}C$ and $30^{\circ}C$ was time-dependent, but on the other hand its at $10^{\circ}C$ are independent of anodization time. The conversion efficiency is low, which is due to a morphology breaking of the $TiO_2$ nanotube arrays in manufacturing process of photoelectrode.
저합금강 소결체의 미세조직 및 기계적 특성에 미치는 인(P) 첨가의 영향
김유영,조권구,Kim, Yoo-Young,Cho, Kwon-Koo 한국분말야금학회 2020 한국분말재료학회지 (KPMI) Vol.27 No.1
Phosphorus is an element that plays many important roles in powder metallurgy as an alloy element. The purpose of this study is to investigate the influence of phosphorus addition on the microstructures and mechanical properties of sintered low-alloy steel. The sintered low-alloy steels Fe-0.6%C-3.89%Ni-1.95%Cu-1.40%Mo-xP (x=0, 0.05, 0.10, 0.15, 0.20%) were manufactured by compacting at 700 MPa, sintering in H<sub>2</sub>-N<sub>2</sub> at 1260 ℃, rapid cooling, and low-temperature tempering in Ar at 160 ℃. The microstructure, pore, density, hardness, and transverse rupture strength (TRS) of the sintered low-alloy steels were evaluated. The hardness increased as the phosphorus content increased, whereas the density and TRS showed maximum values when the content of P was 0.05%. Based on microstructure observation, the phase of the microstructure changed from bainite to martensite as the content of phosphorus is increased. Hence, the most appropriate addition of phosphorus in this study was 0.05%.
타이타늄 합금 분말의 열적산화를 통한 TiO<sub>2</sub> 나노와이어의 합성
김유영,조권구,Kim, Yoo-Young,Cho, Kwon-Koo 한국분말야금학회 2018 한국분말재료학회지 (KPMI) Vol.25 No.1
One-dimensional rutile $TiO_2$ is an important inorganic compound with applicability in sensors, solar cells, and Li-based batteries. However, conventional synthesis methods for $TiO_2$ nanowires are complicated and entail risks of environmental contamination. In this work, we report the growth of $TiO_2$ nanowires on a Ti alloy powder (Ti-6wt%Al-4wt%V, Ti64) using simple thermal oxidation under a limited supply of $O_2$. The optimum condition for $TiO_2$ nanowire synthesis is studied for variables including temperature, time, and pressure. $TiO_2$ nanowires of ${\sim}5{\mu}m$ in length and 100 nm in thickness are richly synthesized under the optimum condition with single-crystalline rutile phases. The formation of $TiO_2$ nanowires is greatly influenced by synthesis temperature and pressure. The synthesized $TiO_2$ nanowires are characterized using field-emission scanning electron microscopy (FE-SEM), X-ray diffraction (XRD), and high-resolution transmission electron microscopy (HR-TEM).
김유영,하종근,조권구,Kim, Yoo-Young,Ha, Jong-Keun,Cho, Kwon-Koo 한국분말재료학회 (*구 분말야금학회) 2019 한국분말재료학회지 (KPMI) Vol.26 No.1
Layered $LiNi_{0.83}Co_{0.11}Mn_{0.06}O_2$ cathode materials single- and dual-doped by the rare-earth elements Ce and Nd are successfully fabricated by using a coprecipitation-assisted solid-phase method. For comparison purposes, non-doping pristine $LiNi_{0.83}Co_{0.11}Mn_{0.06}O_2$ cathode material is also prepared using the same method. The crystal structure, morphology, and electrochemical performances are characterized using X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive spectrometer (EDS) mapping, and electrochemical techniques. The XRD data demonstrates that all prepared samples maintain a typical ${\alpha}-NaFeO_2$-layered structure with the R-3m space group, and that the doped samples with Ce and/or Nd have lower cation mixing than that of pristine samples without doping. The results of SEM and EDS show that doped elements are uniformly distributed in all samples. The electrochemical performances of all doped samples are better than those of pristine samples without doping. In addition, the Ce/Nd dual-doped cathode material shows the best cycling performance and the least capacity loss. At a 10 C-rate, the electrodes of Ce/Nd dual-doped cathode material exhibit good capacity retention of 72.7, 58.5, and 45.2% after 100, 200, and 300 cycles, respectively, compared to those of pristine samples without doping (24.4, 11.1, and 8.0%).
염료감응 태양전지의 TiO<sub>2</sub> 전극의 다중층 및 TiCl<sub>4</sub> 처리에 따른 효과
김경옥,김기원,조권구,류광선,Kim, Gyeong-Ok,Kim, Ki-Won,Cho, Kwon-Koo,Ryu, Kwang-Sun 한국공업화학회 2011 공업화학 Vol.22 No.2
다중층을 형성하여 광자를 가두는 효과와 산란층의 효과를 보고, $TiCl_4$ 처리를 통해 전극에서의 전자의 재결합이 줄어드는 정도와 그에 따른 효과를 알아보기 위하여 여러 가지 방법으로 $TiO_2$ 전극을 형성하고, 가장 최적의 전극 조건을 알아보았다. 각 전극의 특성을 알기 위해서 I-V 곡선, UV-VIS 분광기, EIS, IPCE를 측정하였다. 그 결과, I-V 곡선을 통해 한 층 보다는 다중층이 효율이 더 높은 것을 확인할 수 있었고, 기판 표면과 전극표면에 $TiCl_4$ 처리를 함으로써 EIS분석을 통해 반응저항이 감소하여 효율이 증가함을 확인할 수 있었다. 여러 전극 조건 중 산란층을 지닌 전극이 기본 한 층을 사용한 전극의 효율보다 약 19% 정도 높아짐을 확인하였다. 이러한 효율의 증가는 장파장을 투과하는 빛이 산란층을 통과할 때 전자 이동 경로가 길어지게 되어 단락전류의 값을 증가시키기 때문이다. 이에 따라, $J_{SC}$는 약 10% 정도 증가하였으며, IPCE는 최대 피크에서 약 12%가 향상되는 특성을 보였다. To investigate the photon-trapping effect and scattering layer effect of $TiO_2$ multi-layer in dye-sensitized solar cell (DSSC) and the degree of recombination of electrons at the electrode treated $TiCl_4$, we formed electrodes of different conditions and obtained the most optimal electrode conditions. To estimate characteristics of the cell, IV curve, UV-Vis spectrophotometer, electrochemical impedance spectroscopy (EIS) and incident photon-to-current conversion efficiency (IPCE) were measured. As a result, we confirmed that the multi-layer's efficiency was higher than that of monolayer in the IV curve and the performance of $TiCl_4$ treated electrode was increased according to decreasing the impedance of EIS. Among several conditions, the efficiency of the cell with scattering layer is higher than that of a layer with the base electrode about 19%. Because the light scattering layer enhances the efficiency of the transmission wavelength and has long electron transfer path. Therefore, the value of the short circuit current increases approximately 10% and IPCE in the maximum peak also increases about 12%.
액중 전기선 폭발법을 이용한 비정질 탄소가 코팅된 주석 나노분말의 제조 및 전기화학적 특성
김유영,송주석,조권구,Kim, Yoo-Young,Song, Ju-Suck,Cho, Kwon-Koo 한국분말야금학회 2016 한국분말재료학회지 (KPMI) Vol.23 No.4
Tin is one of the most promising anode materials for next-generation lithium-ion batteries with a high energy density. However, the commercialization of tin-based anodes is still hindered due to the large volume change (over 260%) upon lithiation/delithiation cycling. To solve the problem, many efforts have been focused on enhancing structural stability of tin particles in electrodes. In this work, we synthesize tin nano-powders with an amorphous carbon layer on the surface and surroundings of the powder by electrical wire explosion in alcohol-based liquid media at room temperature. The morphology and microstructures of the powders are characterized by scanning electron microscopy, X-ray diffraction, Raman spectroscopy, and transmission electron microscopy. The electrochemical properties of the powder for use as an anode material for lithium-ion battery are evaluated by cyclic voltammetry and a galvanometric discharge-charge method. It is shown that the carbon-coated tin nano-powders prepared in hexanol media exhibit a high initial charge specific capacity of 902 mAh/g and a high capacity retention of 89% after 50 cycles.
양극산화법에 의한 TiO<sub>2</sub> 나노튜브 어레이의 제조와 성장거동
김선민,김기원,류광선,김유영,조권구,Kim, Seon-Min,Kim, Ki-Won,Ryu, Kwang-Sun,Kim, Yoo-Young,Cho, Kwon-Koo 한국분말야금학회 2011 한국분말재료학회지 (KPMI) Vol.18 No.1
Recently, $TiO_2$ nanotubes have considerably researched because of their novel application about photocatalysis, dye-sensitized solar cells (DSSCs), lithium ion battery, etc. In this work, self-standing $TiO_2$ nanotube arrays were fabricated by anodic oxidation method using pure Ti foil as a working electrode in ethylene glycole with 0.3M $NH_4F$ + $2%H_2O$. Growth behavior of $TiO_2$ nanotube arrays was compared according to temperature, voltage and time. The morphology, structure and crystalline of anodized $TiO_2$ nanotube arrays were observed by FE-SEM (field emission scanning electron microscope) and XRD (X-ray diffraction).