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Ti<sub>0.3</sub>Zr<sub>0.2</sub>V<sub>0.5</sub> 합금게터의 활성화 및 수소흡수특성
김원백,이동진,박제신,서창열,이재천,Kim Wonbaek,Lee Dongjin,Park Jeshin,Suh Changyul,Lee Jaechun 한국재료학회 2005 한국재료학회지 Vol.15 No.2
The lowest activation temperature of a commercial vacuum getter reported so far in literature was about $400^{\circ}C$. Recently, $Ti_{0.3}Zr_{0.2}V_{0.5}$ alloy has been reported to exhibit the activation temperature lower than $200^{\circ}C$ when they are prepared as thin film. In this study, the alloy was prepared as bulk form and its activation temperature and hydrogen sorption properties were investigated in compliance with a standard method. The alloy powder was prepared by arc melting and subsequent HDH(Hydride-DeHydride) process. The activation temperature of the alloy was estimated from the ultimate pressure-temperature curve and located between $150^{\circ}C\;and\;200^{\circ}C$. The hydrogen sorption speed measured by an orifice method was 0.895 liter/sec which is comparable to thin film of same composition.
Ti<sub>0.3</sub>Zr<sub>0.2</sub>V<sub>0.5</sub> 합금의 수소흡수 특성에 미치는 수소화물의 영향
이동진,박제신,서창열,이재천,김원백,Lee Dongjin,Park Jeshin,Suh Changyoul,Lee Jaechun,Kim Wonbaek 한국재료학회 2005 한국재료학회지 Vol.15 No.5
The hydrogen sorption properties of $Ti_{0.3}Zr_{0.2}V_{0.5}$ NEC(non-evaporable getter) alloy and its hydrides were evaluated at room temperature. The alloy and hydride powders were prepared by the Hydride-DeHydride(HDH) method. The hydrogen sorption speed of $Ti_{0.3}Zr_{0.2}V_{0.5}$ alloy was measured to increase with the amounts of hydride phase in the getter. The hydrogen sorption speeds of $Ti_{0.3}Zr_{0.2}V_{0.5},\;(Ti_{0.3}Zr_{0.2}V_{0.5})H_{1.52},\;and\;(Ti_{0.3}Zr_{0.2}V_{0.5})H_{1.94}$ were 2.22, 3.14 and 5.08 liter/sec, respectively. The unexpected enhancement of hydrogen sorption speed with the presence of the hydride phase is considered to be due to the pre-saturation of hydrogen trap sites which can retard the diffusion of hydrogen in the alloy.
Zr-V-Mn-Ni계 라브스상 합금의 미세 구조와 전기 화학적 특성
정치규,한동수,정원섭,김인곤,김원백,Jeong, Chigyu,Han, Dongsoo,Chung, Wonsub,Kim, Ingon,Kim, Wonbaek 한국수소및신에너지학회 1997 한국수소 및 신에너지학회논문집 Vol.8 No.3
아크 용해법으로 제작한 $ZrV_{0.1}Mn_{0.7}Ni_{1.2}$ 합금(bulk 합금) 잉고트는 $ZrV_{0.2}Mn_{0.98}Ni_{1.04}$의 조성식을 가지는 fcc 구조의 C15형 Laves상이 주류를 이루는 matrix와 $ZrV_{0.01}Mn_{0.13}Ni_{1.2}$의 조성으로 $Z_9Ni_{11}$의 금속간 화합물 구조를 가지는 2nd phase가 균일하게 분포된 2개의 상으로 구성되어 있었다. $ZrV_{0.1}Mn_{0.7}Ni_{1.2}$ 합금의 방전 특성에 이 두 가지 상들이 미치는 영향을 알아보기 위해서 matrix와 2'nd phase합금을 분리 제작하였고, 이들 전극에 대한 전기 화학적인 충방천 특성들을 조사하였다. 그 결과 방전용량은 2nd phase가 가장 낮은 $160mAh/g$, 그 다음으로 matrix가 200mAh/g으로 bulk의 250mAh/g보다 낮았다. Matrix조성의 합금은 bulk합금과 거의 유사한 활성화, 고율 방전율, 자기방전 특성을 가졌고, 또한 활성화 후에 충방전에 따른 용량감소의 경향이 현저히 관찰되었다. 그러나 2nd phase 조성의 합금은 이들과는 확연한 차이를 보였다. 즉 활성화되기 어렵지만 활성화된 후에 용량감소의 경향은 거의 없었고 또한 자기방전 특성도 우수하였다. $ZrV_{0.1}Mn_{0.7}Ni_{1.2}$ alloy ingot (bulk alloy) made by the arc melting was found to be consisting of mostly of $ZrV_{0.2}Mn_{0.98}Ni_{1.04}$ matrix alloy and $ZrV_{0.01}Mn_{0.13}Ni_{1.2}$ 2nd phase alloy. The former alloy had the form of the C15 type Laves alloy structure and the latter one had the intermetallic compound structure of $Zr_9Ni_{11}$. In order to investigate the effect of these two phases on the electrochemical charge-discharge characteristics of bulk $ZrV_[0.1}Mn_0.7}Ni_{1.2}$ alloy, the matrix and the 2nd phase alloys were fabricated separately by arc melting method and their electrochemical characteristics were studied and compared with the bulk alloy. It was found that the discharge capacity was the lowest of 160 mAh/g in the 2nd phase alloy. The matrix alloy exhibited 200 mAh/g. Both were lower than that of the bulk alloy of 250 mAh/g. The matrix and the bulk alloys showed a similar properties in the activation stage, the high rate dischargeability and the self discharge characteristics. Also a signigicant capacity decrease was observed after activation in both alloys. Whereas the 2nd phase alloy showed the very different characteristics. This alloy was found to be difficult to activate. However the capacity was remained constant after the activation. Also the self discharge rate was seen to be better than those of the matrix and the bulk alloys.
Laser Ablation법에 의한 ZrVFe 합금 나노분말 제조
길대섭,서용재,장희동,이재천,송창빈,김원백,Kil Daesup,Suh Yongjae,Jang Heedong,Lee Jaechen,Song Changbin,Kim Wonbaek 한국재료학회 2005 한국재료학회지 Vol.15 No.4
Nano-sized ZrVFe alloy powders were prepared by the ablation of powder compact in alcobol using a Nd-YAG pulsed Laser. The $Zr_{57}V_{35.}8Fe_{7.2}$ alloy commercially designated as ST707 has long been known as the ideal solution for various vacuum applications. The target for the ablation was sintered pellets of $Zr_{57}V_{35.}8Fe_{7.2}$ alloy powder. The alloy was prepared by arc melting and Hydride-DeHydride method. The ablated powders were mostly circular having fairly large size distribution smaller than 200 nm in all cases. The X-ray diffraction study revealed that the ablated alloy retained the crystal structure of the target alloy. Nevertheless, Fe and V contents in the ablated powder were lower than those in the target alloy. This was believed to result from the high vapour pressures of Fe and V compared to that of Zr. The size of the powders ablated at high energy fluence tends to decrease due at least partly to the breakdown of previously made ones.