• 제목/요약/키워드: Hydrazine method

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Hydrazine법에 의한 SnO, SnO2 미분말의 합성 (Preparation of SnO and SnO, SnO2 fine powder by hydrazine method)

  • 김강민;김기원;조평석;이종흔
    • 센서학회지
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    • 제14권5호
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    • pp.297-301
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    • 2005
  • Nanocrystalline SnO and $SnO_{2}$ powder have been prepared by hydrazine method. Sn-Hydrazine complex was formed by the reduction between aqueous $SnCl_{2}$ solution and hydrazine monohydrate. $SnO_{2}$ nano powder was prepared by the decomposition of Sn-Hydrazine complex at $450^{\circ}C$. When NaOH was added to Sn-hydrazine complex, SnO powder with nano-sheet morphology could be prepared. This can be attributed to the role of $OH^{-}$ ion as a reducing agent.

Indirect Spectrophotometric Determination of Trace Quantities of Hydrazine

  • Haji Shabani, A.M.;Dadfarnia, S.;Dehghan, K.
    • Bulletin of the Korean Chemical Society
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    • 제25권2호
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    • pp.213-215
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    • 2004
  • An indirect, sensitive and accurate method for the determination of trace amounts of hydrazine is described. The method is based on the oxidation of hydrazine by a known excess of iodate in the presence of hydrochloric acid. The unreacted iodate is used in the oxidation of hydroxylamine to nitrite. Sulfanilic acid is diazotized by the nitrite formed. The resulting diazonium ion is coupled with N-(1-naphthyl)ethylenediamine to form a stable azo dye, which shows an absorption maximum at 540 nm. Hydrazine can be determined in the range of 20-400 ng $mL^{-1}$ with a detection limit of 3.1 ng $mL^{-1}$. The relative standard deviation for 50, 200 and 400 ng $mL^{-1}$ of hydrazine is 2, 1.5 and 1.3%, respectively (n = 10). The method was applied to the determination of hydrazine in water samples.

Use of Hydrazine for Pitting Corrosion Inhibition of Copper Sprinkler Tubes: Reaction of Hydrazine with Corrosion By-Products

  • Suh, Sang Hee;Kim, Sohee;Suh, Youngjoon
    • Corrosion Science and Technology
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    • 제16권5호
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    • pp.247-256
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    • 2017
  • The feasibility of using hydrazine for inhibiting pitting corrosion in copper sprinkler tubes was investigated by examining microscopical and structural evolution of corrosion by-products with SEM, EDS, and XRD. Hydrazine removed dissolved oxygen and reduced CuO and $Cu_2O$ as well. The stable phase was changed from CuO to $Cu_2O$ or Cu depending on hydrazine concentration. Hydrazine concentration of 500 ppm could convert all CuO corrosion by-products to $Cu_2O$. In a tightly sealed acryl tube filled with aqueous solution of 500 ppm hydrazine, octahedral $Cu_2O$ particles were formed while plate-like structures with high concentration of Cu, O, N and C were formed near a corrosion pit. The inside structure of a corrosion pit was not altered by hydrazine aqueous solution. Uniform corrosion of copper was almost completely stopped in aqueous solution of 500 ppm hydrazine. Corrosion potential of a copper plate was linearly dependent on log (hydrazine concentration). The concept of stopping pitting corrosion reaction by suppressing oxygen reduction reaction could be verified by applying this method to a reasonable number of real sprinkler systems before full-scale application.

폐동분으로부터 화학환원법에 의한 Cu 미립자 제조 (Preparation of Copper Fine Particles from Waste Copper by Chemical Reduction Method)

  • 김윤도;송기창;송종혁
    • Korean Chemical Engineering Research
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    • 제45권6호
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    • pp.560-565
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    • 2007
  • 화학환원법을 이용하여 폐동분 수용액에 환원제인 hydrazine을 첨가하여 $0.11{\sim}0.64{\mu}m$ 크기의 Cu 미립자를 제조하였으며, 이 과정 중 hydrazine의 첨가량이 얻어진 분말의 물성에 미치는 영향을 살펴보았다. 또한 분말합성 과정 중 분산제인 polyvinyl alcohol(PVA) 또는 polyvinyl pyrrolidone(PVP) 첨가가 분말의 물성에 미치는 영향도 조사하였다. 1 M 농도의 폐동분 수용액에 hydrazine이 0.8 mol, 1.0 mol 첨가된 경우에는 Cu와 $Cu_2O$의 혼합물을 나타내어 순수한 Cu 분말을 생성하지 못했다. 반면 적당량의 hydrazine(1.2 mol)이 첨가된 경우에는 순수한 Cu 분말이 생성되었다. 또한 얻어진 Cu 분말의 평균크기는 hydrazine과 분산제의 첨가량이 증가함에 따라 감소하였다. 한편 분말의 응집을 억제하는 분산제로서 PVA의 사용이 PVP 보다 더욱 효과적이었다.

새로운 용액환원법에 의한 구형 코발트 미세 분말의 제조 (Preparation of Spherical Cobalt Fine Powders by New Liquid Reduction Method)

  • 김대원;김지훈;최요한;최희락;윤진호
    • 한국분말재료학회지
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    • 제22권4호
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    • pp.260-265
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    • 2015
  • Spherical fine cobalt powders were fabricated by new liquid reduction method. Commercial cobalt sufate heptahydrate was used as raw material. Also ethylene glycol was used as solvent and hydrazine-sodium hypophosphite mixture was used as reduction agent for the new liquid reduction method. A plate shaped cobalt powders with an approximately 300 nm were prepared by a traditional wet ruduction method using distilled water as solvent and hydrazine. Spherical fine cobalt powders with an average size of $1-3{\mu}m$ were synthesized by a new liquid reduction method in 0.3M cobalt sulfate and 1.5M hydrazine-0.6M sodium hypophosphite mixture at 333K.

1, 2-bis(aminoacyl)hydrazine 유도체들의 합성과 항산화 효과 (Synthesis and Antioxidant Activities of 1, 2-bis(aminoacyl) hydrazine derivatives)

  • 강신원;이상운;신홍대
    • 한국응용과학기술학회지
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    • 제3권1호
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    • pp.43-47
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    • 1986
  • 1.2-bis(aminoacyl)hydrazine derivatives and dipeptides were synthesized by conventional peptide synthesis procedures. Their antioxidant activity were inverstigated by over-storage test using corn oil as substrte. 1.2-bis (aminoacyl) hydrazine derivatives and dipetides containing hydrophobic side chain amino acid showed higher antioxidant activity. A free N-terminal amino group was also found to be important for the appearance of antioxidant activity. 1.2-bis (aminoacyl) hydrazine derivatives showed higher antioxidant activity than dipeptides. Antimicrobial activites of dipeptides and 1.2-bis (aminoacyl) hydrazine derivatives were also examined by the paper disc method. All of these compounds had shown no antimicrobial activity.

Hydrazine 법에 의한 CuO 미분말의 합성 및 가스 감응성 평가 (Preparation of nanocrystalline CuO powders by hydrazine method and their gas sensing characteristics)

  • 김선중;이종흔
    • 센서학회지
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    • 제16권1호
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    • pp.11-16
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    • 2007
  • CuO is an important transition metal oxide with many practical applications such as catalysts, p-type semiconductor, solar cells, magnetic storage media and cathode materials. In this contribution, nanocrystalline CuO powders were prepared by solution reduction method using copper chloride ($CuCl_{2}{\cdot}2H_{2}O$), hydrazine ($N_{2}H_{4}$) and NaOH and subsequent heat treatment. The gas sensor using nanocrystalline CuO powders showed high sensitivities to acetone and ethanol.

Study on properties of eco-friendly reduction agents for the reduced graphene oxide method

  • Na, Young-il;Song, Young Il;Kim, Sun Woo;Suh, Su-Jeong
    • Carbon letters
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    • 제24권
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    • pp.1-9
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    • 2017
  • We studied the basic properties and fabrication of reduced graphene oxide (rGO) prepared using eco-friendly reduction agents in the graphene solution process. Hydrazine is generally used to reduce graphene oxide (GO), which results in polluting emissions as well as fixed nitrogen functional groups on different defects in the graphene sheets. To replace hydrazine, we developed eco-friendly reduction agents with similar or better reducing properties, and selected of them for further analysis. In this study, GO layers were produced from graphite flakes using a modified Hummer's method, and rGO layers were reduced using hydrazine hydrate, L-ascorbic acid, and gluconic acid. We measured the particle sizes and the dispersion stabilities in the rGO dispersed solvents for the three agents and analyzed the structural, electrical, and optical properties of the rGO films. The results showed that the degree of reduction was in the order L-ascorbic acid ${\geq}$ hydrazine > glucose. GO reduced using L-ascorbic acid had a sheet resistance of $121k{\Omega}/sq$, while that reduced using gluconic acid showed worse electrical properties than the other two reduction agents. Therefore, L-ascorbic acid is the most suitable eco-friendly reduction agent that can be substituted for hydrazine.

Hydrazine 合成의 一考察 (A Consideration of Hydrazine Syntheses)

  • 이학기
    • 대한화학회지
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    • 제5권1호
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    • pp.1-6
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    • 1961
  • It is important to study hydrazine because of the development of new uses for its derivatives. The Rasching method is the only satisfactory one for synthesizing hydrazine; it involves the oxidation of ammonia by sodium hypochlorite in the presence of some such catalyst as gelatin. Calcium hypochlorite was substituted for the sodium hypochlorite particularly in this work, applying agar-agar as catalyst. The results of the experiments are as follow: 1. The yield is proportional to the mole-ratio of ammonia to available chlorine in calcium hypochlorite and about 60% is obtained when the ratio is 20. 2. Agar-agar can be used as a catalyst and its proper concentration in the solution is 0.005%. 3. Proper concentration of available chlorine in the reaction solution is 0.23 mole/l. 4. The most effective condition for the reaction is a temperature of $60{\sim}65^{\circ}C.$ maintained for $20{\sim}25min$. 5. The reaction takes place equally well in either an open or closed container. 6. When calcium hypochlorite is applied in place of sodium hypochlorite, the yield of hydrazine is increased as much as 17%. 7. The yield of hydrazine is decreased by eliminating the suspension of $Ca(OH)_2$ which results from the use of calcium hypochlorite. 8. When $Ca(OH)_2$ is added to Rasching process, the yield of hydrazine is raised normally. 9. The fact that some metal ions, such as $Cu^{++},$ inhibit the formation of hydrazine was proved. 10. The suspension of $Ca(OH)_2$ acted as a remarkable adsorbent for $Cu^{++}$ like gelatin. The suspension of $Ca(OH)_2$ which results from the use of calcium hypochlorite acts as a catalyst, absorbing metal ions, to increase the yield of hydrazine. So I think that calcium hypochlorite is a more efficient oxidant than sodium hypochlorite in hydrazine syntheses.

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