• 제목/요약/키워드: Anodic

검색결과 1,274건 처리시간 0.029초

Anodic Alumina와 Retriculate Vitreous Carbon을 전극으로 사용하여 수용액에서 중금속이온의 제거 (Removal of Heavy Metal Ions in the Aqueous Solution Using Anodic Alumina and Retriculate Vitreous Carbon Electrodes)

  • 조승구;이건주
    • 유기물자원화
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    • 제11권4호
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    • pp.120-129
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    • 2003
  • 0.3M의 옥살산 용액에서 anodic alumina를 제작하였으며 barrier 층을 제거하기 위하여 20wt% 황산 용액에서 한시간 동안 방치시켰다. 이 anodic alumina를 전극으로 사용하여 수용액에서 $Cd^{2+}$, $Co2^{+}$$Pb^{2+}$이온들을 환원시켜 제거하였다. XRD와 SBM으로 anodic alumina의 구조를 분석하였고, SEM 결과 anodic alumina에는 60nm의 pore가 존재함을 확인할 수 있었으며, 20wt% 황산 용액으로 처리 후 anodic alumina의 표면이 황산에 약간 녹기 때문에 anodic alumina의 표면의 규칙성이 떨어지는 결과를 보였다. anodic alumina를 음극, 그리고 탄소를 양극으로 각각 사용하여 $Cd(NO_3)_2{\cdot}4H_2O$, $Co(NO_3)_2{\cdot}6H_2O$$PbSO_4$ 수용액에 24시간동안 직류전류를 흘려주었을 때, 전류를 흘려준 시간에 따라 전압이 각각 4.6, 3.4 및 5.1V 까지 증가하다가 4.2, 2.7 및 2.4V로 일정해지는 결과를 얻었다. 전류를 흘려준 시간이 18시간까지는 시간이 증가할수록 용액내의 금속이온의 농도는 감소하였으며 음극인 anodic alumina의 표면에 각 금속들이 석출되는 것을 확인할 수 있었다. anodic alumina로 금속이온을 제거한 수용액을 retriculate vitreous carbon(RVC)를 작업전극으로 하는 flow cell로 제2차 금속이온 제거를 수행하였다. $Cd^{2+}$$Co^{2+}$이온의 농도는 용액을 flow cell에 20분간 흘려줄 때까지만 감소하였고 $Pb^{2+}$이온 농도는 30분까지 감소하였다. 이 경우 $Cd^{2+}$, $Co^{2+}$$Pb^{2+}$이온들 제거효율은 각각 34.78, 28.79 및 86.38% 이었다. 또한 $Cd^{2+}$$Co^{2+}$이온이 동시에 RVC전극에 흡착 가능한 결과를 보였으며 제거효율은 32.30 및 31.37% 이었다.

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Preparation of Tantalum Anodic Oxide Film in Citric Acid Solution - Evidence and Effects of Citrate Anion Incorporation

  • Kim, Young-Ho;Uosaki, Kohei
    • Journal of Electrochemical Science and Technology
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    • 제4권4호
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    • pp.163-170
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    • 2013
  • Tantalum anodic oxide film was prepared in citric acid solution of various concentrations and the prepared Ta anodic oxide film was characterized by various electrochemical techniques and X-ray photoelectron spectroscopy (XPS). The prepared Ta anodic oxide film showed typical n-type semiconducting properties and the dielectric properties were strongly dependent on the citric acid concentration. The variation of electrochemical and electronic properties was explained in terms of electrolyte anion incorporation into the anodic oxide film, which was supported by XPS measurements.

Simple Preparation of One-dimensional Metal Selenide Nanomaterials Using Anodic Aluminum Oxide Template

  • Piao, Yuanzhe
    • Journal of Electrochemical Science and Technology
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    • 제3권1호
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    • pp.35-43
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    • 2012
  • Highly ordered and perforated anodic aluminum oxide membranes were prepared by anodic oxidation and subsequent removal of the barrier layer. By using these homemade anodic aluminum oxide membranes as templates, metal selenide nanowires and nanotubes were synthesized. The structure and composition of these one-dimensional nanomaterials were studied by field emission scanning electron microscopy as well as transmission electron microscopy and energy dispersive X-ray spectroscopy. The growth process of metal selenide inside anodic aluminum oxide channel was traced by investigating the series of samples using scanning electron microscopy after reacting for different times. Straight and dense copper selenide and silver selenide nanowires with a uniform diameter were successfully prepared. In case of nickel selenide, nanotubes were preferentially formed. Phase and crystallinity of the nanostructured materials were also investigated.

나노 기공성 알루미나의 생성과 화학적 용해 거동 (Formation and Chemical Dissolution Behaviors of Nano Porous Alumina)

  • 오한준;정용수;지충수
    • 한국표면공학회지
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    • 제43권5호
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    • pp.217-223
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    • 2010
  • For an application as templates of high performance with proper pore size and shape, porous anodic alumina films were prepared by anodization in oxalic acid, and formation behaviors of anodic alumina layer as well as dissolution process in acid solution have been investigated. The surface characteristics on anodic alumina layer were shown to be dependent on the fabrication parameters for anodization. For the dissolution behaviors of anodic alumina, the thickness of the barrier-type alumina layer decreased linearly with the rate of 0.98 nm/min in $H_3PO_4$ solution at $30^{\circ}C$. The changes of the anodic alumina layers were analyzed by SEM and TEM.

알루미늄 양극산화 피막의 전해착색에 관한 연구 (Electrocoloring during Anodic Oxidation of 6063 Aluminium Alloy)

  • 정순오;한성호;백영현
    • 한국표면공학회지
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    • 제33권5호
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    • pp.309-318
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    • 2000
  • The 6063 Aluminium alloy were electrocolored and anodized at the same time in addition of $CoSO_4$, $FeSO_4$, in the electrolyte and investigated by AES/SAM. It was found that the thickness of anodic oxide film is increased linearly in DC type, and DC combined AC type, the more ratio of anodic Portion in AC, the more increased of anodic film thickness. The color of anodic film was changed from silver to yellow when the increase of the ratio of cathodic portion in AC. Also the increase of $CoSO_4$, $FeSO_4$ in the electrolyte, the coloring time is decreased. From the AES/SAM results, the element of anodic oxide film are Al,O and S. The result of depth profile, the most of the S distributed on the surface and the more S is in DC combined AC type than only DC type.

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Electrochemical Synthesis of TiO2 Photocatalyst with Anodic Porous Alumina

  • Hattori, Takanori;Fujino, Takayoshi;Ito, Seishiro
    • 한국재료학회지
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    • 제17권11호
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    • pp.593-600
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    • 2007
  • Aluminum was anodized in a $H_2SO_4$ solution, and titanium (IV) oxide ($TiO_2$) was electrodeposited into nanopores of anodic porous alumina in a mixed solution of $TiOSO_4$ and $(COOH)_2$. The photocatalytic activity of the prepared film was analyzed for photodegradation of methylene blue aqueous solution. Consequently, we found it was possible to electrodeposit $TiO_2$ onto anodic porous alumina, and synthesized it into the nanopores by hydrolysis of a titanium complex ion under AC 8-9 V when film thickness was about $15-20{\mu}m$. The photocatalytic activity of $TiO_2$-loaded anodic porous alumina ($TiO_2/Al_2O_3$) at an impressed voltage of 9 V was the highest in every condition, being about 12 times as high as sol-gel $TiO_2$ on anodic porous alumina. The results revealed that anodic porous alumina is effective as a substrate for photocatalytic film and that high-activity $TiO_2$ film can be prepared at low cost.

An Investigation of Pulse Anodization Duty Ratio and Sealing Treatment on the Corrosion Behavior of the Anodic Coating Layer in Magnesium AZ31B

  • Setiawan, Asep Ridwan;Rachman, Muhammad Dani
    • Corrosion Science and Technology
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    • 제20권2호
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    • pp.45-51
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    • 2021
  • In this work, we describe the effect of pulse anodizing duty ratio on the corrosion resistance of anodic films in magnesium AZ31B. The process involves the application of square pulse potential for a constant period with a duty ratio varying from 40, 60 and 80%. In several samples, a sealing treatment for 30 minutes was conducted after anodization in order to seal the pores available in the anodic layer. After anodizing, the surface morphology of the anodic layer was examined using a scanning electron microscope (SEM Hitachi SU3500). The corrosion characteristics of the sample were evaluated through an open circuit potential (OCP) and potentiodynamic polarization test using potentiogalvanostat. SEM observation shows that the increase of anodization duty ratio (α) results in a more uniform anodic layer, with fewer pores and cracks. The increase of duty ratio (α) decreases the OCP value from approximately -1.475 to about -1.6 Volt, and significantly improves the corrosion resistance of the anodic coating by 68%. The combination of anodization and sealing treatment produces an anodic coating with a very low corrosion rate of 4.4 mpy.

3중 접합 공정에 의한 MEMS 공진기의 웨이퍼레벨 진공 패키징 (Wafer-level Vacuum Packaging of a MEMS Resonator using the Three-layer Bonding Technique)

  • 양충모;김희연;박종철;나예은;김태현;노길선;심갑섭;김기훈
    • 센서학회지
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    • 제29권5호
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    • pp.354-359
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    • 2020
  • The high vacuum hermetic sealing technique ensures excellent performance of MEMS resonators. For the high vacuum hermetic sealing, the customization of anodic bonding equipment was conducted for the glass/Si/glass triple-stack anodic bonding process. Figure 1 presents the schematic of the MEMS resonator with triple-stack high-vacuum anodic bonding. The anodic bonding process for vacuum sealing was performed with the chamber pressure lower than 5 × 10-6 mbar, the piston pressure of 5 kN, and the applied voltage was 1 kV. The process temperature during anodic bonding was 400 ℃. To maintain the vacuum condition of the glass cavity, a getter material, such as a titanium thin film, was deposited. The getter materials was active at the 400 ℃ during the anodic bonding process. To read out the electrical signals from the Si resonator, a vertical feed-through was applied by using through glass via (TGV) which is formed by sandblasting technique of cap glass wafer. The aluminum electrodes was conformally deposited on the via-hole structure of cap glass. The TGV process provides reliable electrical interconnection between Si resonator and aluminum electrodes on the cap glass without leakage or electrical disconnection through the TGV. The fabricated MEMS resonator with proposed vacuum packaging using three-layer anodic bonding process has resonance frequency and quality factor of about 16 kHz and more than 40,000, respectively.

전해액 중 Sodium silicate의 농도에 따라 양극 산화된 AZ31B 마그네슘 합금 양극 피막의 특성 평가 (Characteristic Evaluation of Anodic Film Depending on the Concentration of Sodium Silicate in the Electrolyte Anodized AZ31B Magnesium Alloy)

  • 이동길;김용환;박현;정우창;정원섭
    • 한국표면공학회지
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    • 제42권3호
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    • pp.109-115
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    • 2009
  • Magnesium is one of the lightest metals, and magnesium alloys have excellent physical and mechanical properties such as high stiffness/weight ratios, good castability, good vibration and shock absorption. However their poor corrosion resistance, wear resistance, hardness and so on, have limited their application. To improve these defects, many techniques are developed. Micro arc oxidation(MAO) is a one of the surface treatments under anodic oxidation in which ceramic coating is directly formed on the surface of magnesium alloy. In this study, the characteristics of anodic film were examined after coating the AZ31B magnesium alloy through the MAO process. MAO was carried out in potassium hydroxide, potassium fluoride, and various concentration of sodium silicate in electrolyte. The morphology and chemical composition of the coating layer were characterized by SEM, XRD, EPMA and EDS. The hardness of anodic films was measured by micro-vickers hardness tester. As a result, the morphology and composition of anodic film were changed by concentration of sodium silicate. Thickness and Si composition of anodic film was increased with increasing concentration of sodium silicate in electrolyte. The hardness of anodic film was highly increased when the concentration of sodium silicate was above 40 g/l in electrolyte.