• 제목/요약/키워드: chemical hydrogen storage

검색결과 209건 처리시간 0.023초

Zn3(PO4)2 Protective Layer on Zn Anode for Improved Electro-chemical Properties in Aqueous Zn-ion Batteries

  • Chae-won Kim;Junghee Choi;Jin-Hyeok Choi;Ji-Youn Seo;Gumjae Park
    • Journal of Electrochemical Science and Technology
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    • 제14권2호
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    • pp.162-173
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    • 2023
  • Aqueous zinc-ion batteries are considered as promising alternatives to lithium-ion batteries for energy storage owing to their safety and cost efficiency. However, their lifespan is limited by the irreversibility of Zn anodes because of Zn dendrite growth and side reactions such as the hydrogen evolution reaction and corrosion during cycling. Herein, we present a strategy to restrict direct contact between the Zn anode and aqueous electrolyte by fabricating a protective layer on the surface of Zn foil via phosphidation method. The Zn3(PO4)2 protective layer effectively suppresses Zn dendrite growth and side reactions in aqueous electrolytes. The electrochemical properties of the Zn3(PO4)2@Zn anode, such as the overpotential, linear polarization resistance, and hydrogen generation reaction, indicate that the protective layer can suppress interfacial corrosion and improve the electrochemical stability compared to that of bare Zn by preventing direct contact between the electrolyte and the active sites of Zn. Remarkably, MnO2 Zn3(PO4)2@Zn exhibited enhanced reversibility owing to the formation a stable porous layer, which effectively inhibited vertical dendrite growth by inducing the uniform plating of Zn2+ ions underneath the formed layer.

모사된 석탄가스화 합성가스를 이용한 La0.9Sr0.1Cr0.7B0.3O3±δ (B=Mn, Ni, Fe, Ru)의 수성가스전이반응 활성 및 특성에 관한 연구 (The Study on the Catalytic Performance and Characterization of La0.9Sr0.1Cr0.7B0.3O3±δ (B=Mn, Ni, Fe, Ru) for High Temperature Water-gas Shift Reaction with Simuated Coal-derived Syngas)

  • 이슬기;곽재훈;손정민
    • 한국수소및신에너지학회논문집
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    • 제24권6호
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    • pp.543-549
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    • 2013
  • In this study, $La_{0.9}Sr_{0.1}Cr_{0.7}M_{0.3}O_{3{\pm}{\delta}}$ (M=Mn, Ru, Fe, Ni) were prepared by sol-gel method and water gas shift reaction with simulated coal-derived syngas between $400{\sim}650^{\circ}C$ was conducted to evaluate the catalytic activity of prepared catalysts. Physico-chemical properties were characterized by XRD, BET, SEM-EDS and TPR. The formation of perovskite crystallite, $LaCrO_3$ was confirmed and the highest surface area was measured with $La_{0.9}Sr_{0.1}Cr_{0.7}Mn_{0.3}O_{3{\pm}{\delta}}$. Equilibrium conversion of CO above $550^{\circ}C$ was achieved except $La_{0.9}Sr_{0.1}Cr_{0.7}Fe_{0.3}O_{3{\pm}{\delta}}$. and methanation reaction was carried out as side reaction of water gas shift reaction with $La_{0.9}Sr_{0.1}Cr_{0.7}Ni_{0.3}O_{3{\pm}{\delta}}$ and $La_{0.9}Sr_{0.1}Cr_{0.7}Ru_{0.3}O_{3{\pm}{\delta}}$. Conclusively, $La_{0.9}Sr_{0.1}Cr_{0.7}M_n{0.3}O_{3{\pm}{\delta}}$ was the most suitable catalyst of water gas shift reaction above $500^{\circ}C$ for CO conversion and hydrogen production.

Improvement of Hydrogen Storage Properties of Mg by Addition of NbF5 via Mechanical Milling under H2

  • Kwak, Young Jun;Song, Jiyoung;Mumm, Daniel R.
    • 한국재료학회지
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    • 제23권10호
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    • pp.562-567
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    • 2013
  • A 90 wt% Mg-10 wt% $NbF_5$ sample was prepared by mechanical milling under $H_2$ (reactive mechanical grinding). Its hydriding and dehydriding properties were then examined. Activation of the 90 wt% Mg-10 wt% $NbF_5$ sample was not required. At n=1, the sample absorbed 3.11 wt% H for 2.5 min, 3.55 wt% H for 5 min, 3.86 wt% H for 10 min, and 4.23 wt% H for 30 min at 593K under 12 bar $H_2$. At n=1, the sample desorbed 0.17 wt% H for 5 min, 0.74 wt% H for 10 min, 2.03 wt% H for 30 min, and 2.81 wt% H for 60 min at 593K under 1.0 bar $H_2$. The XRD pattern of the 90 wt% Mg-10 wt% $NbF_5$ after reactive mechanical grinding showed Mg, ${\beta}-MgH_2$ and small amounts of ${\gamma}-MgH_2$, $NbH_2$, $MgF_2$ and $NbF_3$. The XRD pattern of the 90 wt% Mg-10 wt% $NbF_5$ dehydrided at n=3 revealed Mg, ${\beta}-MgH_2$, a small amount of MgO and very small amounts of $MgH_2$ and $NbH_2$. The 90 wt% Mg-10 wt% $NbF_5$ had a higher initial hydriding rate and a larger quantity of hydrogen absorbed for 60 min than the 90 wt% Mg-10 wt% MnO and the 90 wt% Mg-10 wt% $Fe_2O_3$, which were reported to have quite high hydriding rates and/or dehydriding rates. The 90 wt% Mg-10 wt% $NbF_5$ had a higher initial dehydriding rate (after an incubation period) and a larger quantity of hydrogen desorbed for 60 min than the 90 wt% Mg-10 wt% MnO and the 90 wt% Mg-10 wt% $Fe_2O_3$.

Biocontrol Efficacy of Formulated Pseudomonas chlororaphis O6 against Plant Diseases and Root-Knot Nematodes

  • Nam, Hyo Song;Anderson, Anne J.;Kim, Young Cheol
    • The Plant Pathology Journal
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    • 제34권3호
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    • pp.241-249
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    • 2018
  • Commercial biocontrol of microbial plant diseases and plant pests, such as nematodes, requires field-effective formulations. The isolate Pseudomonas chlororaphis O6 is a Gram-negative bacterium that controls microbial plant pathogens both directly and indirectly. This bacterium also has nematocidal activity. In this study, we report on the efficacy of a wettable powder-type formulation of P. chlororaphis O6. Culturable bacteria in the formulated product were retained at above $1{\times}10^8$ colony forming units/g after storage of the powder at $25^{\circ}C$ for six months. Foliar application of the diluted formulated product controlled leaf blight and gray mold in tomato. The product also displayed preventative and curative controls for root-knot nematode (Meloidogyne spp.) in tomato. Under laboratory conditions and for commercially grown melon, the control was at levels comparable to that of a standard commercial chemical nematicide. The results indicated that the wettable powder formulation product of P. chlororaphis O6 can be used for control of plant microbial pathogens and root-knot nematodes.

GAP 및 GAP-co-BO Copolymer계 에너지 함유 열가소성 폴리우레탄의 합성 및 특성 (Synthesis and Characterization of GAP or GAP-co-BO Copolymer-based Energetic Thermoplastic Polyurethane)

  • 설양호;권정옥;김용진;진용현;노시태
    • 공업화학
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    • 제30권6호
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    • pp.673-680
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    • 2019
  • GAP 및 GAP-co-BO계 에너지 함유 열가소성 탄성체(ETPE)의 하드세그먼트 함량을 30~45% 범위에서 변화시켜 합성하여 열적 특성 및 기계적 특성을 비교 연구하여 고찰하였다. FTIR 분석 결과로부터 GAP-co-BO계 ETPE와 GAP계 ETPE는 하드세그먼트 함량이 증가함에 따라 수소결합을 형성하는 능력이 증가하였으며 GAP-co-BO계 ETPE의 수소 결합 능력이 GAP계 ETPE보다 크게 나타났다. DSC와 DMA 분석 결과로부터 GAP계 ETPE의 유리전이온도(Tg)는 하드세그먼트 함량이 증가함에 따라 증가하였으나, GAP-co-BO계 ETPE의 유리전이온도(Tg)는 하드세그먼트가 증가하여도 유사한 값을 유지하였다. 상온 storage modulus는 GAP-co-BO계 ETPE의 값이 GAP계 ETPE 값보다 더 크게 나타났다. 이러한 거동은 GAP-co-BO계 ETPE 내의 하드세그먼트와 소프트세그먼트의 강한 상분리 거동의 결과로 볼 수 있다. 그 결과 GAP-co-BO계 ETPE는 GAP계 ETPE보다 더 큰 파단강도와 더 낮은 파단신율 값을 나타냈다.

고분자 전해질 연료전지 촉매층 바인더를 위한 Sulfonated Fluorenyl Poly(ether sulfone)에 관한 연구 (A Study on Sulfonated Fluorenyl Poly(ether sulfone)s as Catalyst Binders for Polymer Electrolyte Fuel Cells)

  • 조원재;이미순;이연식;윤영기;최영우
    • 전기화학회지
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    • 제19권2호
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    • pp.39-44
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    • 2016
  • 연료전지에서 산소 환원 반응 (ORR)은 전체 반응에서 지배적인 역할을 한다. 또한 서로 다른 물질로 이루어진 막과 바인더 간의 낮은 호환성은 연료전지 효율을 크게 감소시킨다. 이러한 두 가지 문제점을 고려하여, 본 연구에서는 기존의 일반적인 Biphenol 대신 입체적 구조를 갖는 9,9_Bis(4-hydroxyphenyl) fluorine를 이용한 고분자를 합성하여 각각의 전극 바인더를 제조하였고, 이를 이용하여 각각의 나피온 막과 탄화수소 막 위에 스프레이 기법으로 MEA를 제조하여 전기화학적 성능 평가를 진행하였다. 그 결과 전류-전압 곡선에서의 0.6 V의 성능이 두 종류의 다른 막을 적용 했을 때 큰 차이를 보이지 않았으며, 탄화 수소 막의 타펠 기울기의 정도가 나피온 막에 비해 현저히 낮았다. 이를 통해 본 연구에서 적용된 아이오노머 바인더가 연료 전지성능 향상에 더 기여할 수 있을 것으로 판단 된다.

Viscoelastic behavior of aqueous surfactant micellar solutions

  • Toshiyuki Shikata;Mamoru Shiokawa;Shyuji Itatani;Imai, Shin-ichiro
    • Korea-Australia Rheology Journal
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    • 제14권3호
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    • pp.129-138
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    • 2002
  • A cationic surfactant, cetyltrimethylammonium $\rho$-toluenesufonate (CTA$\rho$TS), forms long threadlike micelles in aqueous solution. The threadlike micelles make concentrated entanglement networks, so that the solution shows pronounced viscoelastic behavior as concentrated polymer systems do. However, a mechanism for a process responsible for the longest relaxation time of the threadlike micellar system is different from that of semi-dilute to concentrated polymer systems. The threadlike micellar system exhibits unique viscoelasticity described by a Maxwell model. The longest relaxation time of the threadlike micellar system is not a function of the concentration of CTA$\rho$TS, but changes with that of $\rho$-toluenesufonate ($\rho$$TS^{-}$) ions in the bulk aqueous phase supplied by adding sodium $\rho$-toluenesulfonate (NapTS). The rates of molecular motions in the threadlike micelles are not influenced by the concentration of $\rho$$TS^{-}$ anions, therefore, molecular motions in the threadlike micelles (micro-dynamics) are independent of the longest relaxation mechanism (macro-dynamics). A nonionic surfactant, oleyldimethylamineoxide (ODAO), forms long threadlike micelles in aqueous solution without any additives. The aqueous threadlike micellar system of ODAO also shows Maxwell type viscoelastic behavior. However, the relaxation mechanism for the longest relaxation process in the system should be different from that in the threadlike micellar systems of CTA$\rho$TS, since the system of ODAO does not contain additive anions. Because increase in the average degree of protonation of head groups of ODAO molecules in micelles due to adding hydrogen bromide causes the relaxation time remarkably longer, changes in micro-structure and micro-dynamics in the threadlike micelle are closely related to macro-dynamics in contrast with the threadlike micellar system of CTA$\rho$TS.

Oxidative Damage of DNA Induced by Ferritin and Hydrogen Peroxide

  • Kang, Jung-Hoon
    • Bulletin of the Korean Chemical Society
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    • 제31권10호
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    • pp.2873-2876
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    • 2010
  • Excess free iron generates oxidative stress that may contribute to the pathogenesis of various causes of neurodegenerative diseases. Previous studies have shown that one of the primary causes of increased brain iron may be the release of excess iron from intracellular iron storage molecules. In this study, we attempted to characterize the oxidative damage of DNA induced by the reaction of ferritin with $H_2O_2$. When DNA was incubated with ferritin and $H_2O_2$, DNA strand breakage increased in a time-dependent manner. Hydroxyl radical scavengers strongly inhibited the ferritin/$H_2O_2$ system-induced DNA cleavage. We investigated the generation of hydroxyl radical in the reaction of ferritin with $H_2O_2$ using a chromogen, 2,2'-azinobis-(2-ethylbenzthiazoline-6-sulfonate) (ABTS), which reacted with ${\cdot}OH$ to form $ABTS^{+\cdot}$. The initial rate of $ABTS^{+\cdot}$ formation increased as a function of incubation time. These results suggest that DNA strand breakage is mediated in the reaction of ferritin with $H_2O_2$ via the generation of hydroxyl radicals. The iron-specific chelator, deferoxamine, also inhibited DNA cleavage. Spectrophotometric study using a color reagent showed that the release of iron from $H_2O_2$-treated ferritin increased in a time-dependent manner. Ferritin enhanced mutation of the lacZ' gene in the presence of $H_2O_2$ when measured as a loss of $\alpha$-complementation. These results indicate that ferritin/$H_2O_2$ system-mediated DNA cleavage and mutation may be attributable to hydroxyl radical generation via a Fenton-like reaction of free iron ions released from oxidatively damaged ferritin.

분류층 습식 석탄가스화 기술 (Entrained-Flow Coal Water Slurry Gasification)

  • 라호원;이시훈;윤상준;최영찬;김재호;이재구
    • Korean Chemical Engineering Research
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    • 제48권2호
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    • pp.129-139
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    • 2010
  • 석탄으로부터 수소, 일산화탄소 등의 가스 연료를 생산하기 위하여 개발된 석탄 가스화 공정은 이산화탄소 저장, 환경 유해 물질 저감 등의 우수성으로 인하여 최근 세계 각국에서 앞다투어 개발에 나서고 있다. $75{\mu}m$ 이하의 미분탄을 이용하는 분류층 가스화 공정은 용량의 대형화가 쉽고, 에너지 전환 효율이 우수하여 석탄가스화복합발전(IGCC) 등에 널리 이용되고 있다. 특히 석탄슬러리를 원료로 사용하는 습식 분류층 가스화 공정은 기술적으로 성숙되어 가장 많이 보급되고 있다. 본 논문에서는 습식 분류층 가스화 공정을 이루는 석탄전처리, 버너, 가스화기, 슬래그용융, 가스화 운전 특성과 설계 및 해석을 위한 수치모사 등의 요소기술 개발 현황을 고찰하였다. 습식 석탄가스화는 IGCC 플랜트에서 뿐만 아니라 합성석유, SNG, 화학원료 제조용으로 활용될 수 있으며 융합 공정, 연료 다변화 등에 대응하기 위하여 요소기술별 추가적인 기술개발이 이루어져야 할 것으로 판단된다.

NaBH4 가수분해 반응기 소재로서 알루미늄 합금의 특성 연구 (Characteristics of Al Alloy as a Material for Hydrolysis Reactor of NaBH4)

  • 정현승;오성준;정재진;나일채;추천호;박권필
    • Korean Chemical Engineering Research
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    • 제53권6호
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    • pp.677-681
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    • 2015
  • $NaBH_4$ 가수 분해용 경량반응기의 재질로서 알루미늄 합금을 검토하였다. 알루미늄은 알칼리에 용해되는데, $NaBH_4$ 반응 용액중에 안정화제로 NaOH가 포함되어 있다. 알루미늄의 부식 속도를 낮추기 위해서 NaOH 농도를 낮추면 저장중에 $NaBH_4$가 손실된다. 그래서 최적의 NaOH 농도를 결정할 때 알루미늄 부식과 $NaBH_4$ 안정화를 모두 고려해야 한다. $NaBH_4$ 안정화와 알루미늄 부식속도는 수소발생속도에 의해 측정하였다. $NaBH_4$ 안정화는 $20{\sim}50^{\circ}C$에서 알루미늄 부식속도는 $60{\sim}90^{\circ}C$ 온도에서 실험하였다. 알루미늄 부식과 $NaBH_4$ 안정화를 모두 고려한 최적의 NaOH농도는 0.30 wt% 였다. 알루미늄 합금 6061를 사용해 반응기 온도 $80{\sim}90^{\circ}C$에서 NaOH 0.3 wt%로 200분간 반응을 진행하였다.