• Title/Summary/Keyword: InSnZnO

Search Result 289, Processing Time 0.029 seconds

Biological Leaching of Cu, Al, Zn, Ni, Co, Sn and Pb from Waste Electronic Scrap using Thiobacillus Ferrooxidans (廢電子스크랩에서 Thiobacillus ferrooxidans를 이용한 Cu, Al, Zn, Ni, Co, Sn 및 Pb의 浸出)

  • Ahn, Jae-Woo;Kim, Myeong-Woon;Jeong, Jin-Ki;Lee, Jae-Chun;Kim, Dong-Gin;Ahn, Jong-Gwan
    • Resources Recycling
    • /
    • v.14 no.1
    • /
    • pp.17-25
    • /
    • 2005
  • In order to recover valuable metals from the waste electronic scrap, bioleaching of Cu, Zn, Al, Co, Ni, Sn and Pb was carried out using Thiobacillus ferrooxidans as a leaching microorganism in a shaking flask. In a preliminary study, to obtain the data on the leaching of Cu, Zn, Al, Co and Ni, the metal leaching was accomplished using metal powers instead of electronic scrap. The leaching percentaga of Cu, Zn, Co, Al and Ni powers was reduced with the increase of metal power concentration in solution. Below the metal concentration of 0.5 g/L, more than 85% of Cu, Co and Zn powers was leached out. At the electronic scrap concentration of 100 g/L, Thiobacillus ferrooxidans were able to leach more than 90% of the available Cu and Co while Al, Zn and Ni were able to leach less than 40%. Pb and Sn were not detected in the leachate. Pb was precipitated as PbSO$_4$, whereas Sn precipitated probably as SnO.

ITZO 박막의 전자적 및 광학적 특성

  • Lee, Seon-Yeong;Denny, Yus Rama;Gang, Hui-Jae;Heo, Seong;Jeong, Jae-Gwan;Lee, Jae-Cheol;Chae, Hong-Cheol
    • Proceedings of the Korean Vacuum Society Conference
    • /
    • 2012.02a
    • /
    • pp.324-324
    • /
    • 2012
  • 투명전도체(Transparent Conducting Oxides: TCOs)는 일반적으로 면저항이 $103{\Omega}/sq$ 이하로 전기가 잘 통하며, 가시광선영역인 380~780 nm에서의 투과율이 80% 이상이고, 3.2eV 이상의 밴드갭을 가지는 재료로써, 전기전도도와 가시광선영역에서 투과성이 높아 전기적, 광학적 재료로 관심을 받아 다년간 연구대상이 되어오고 있다. 현재 가장 널리 사용되고 있는 투명전도체(Transparent Conducting Oxides: TCOs) 소재로는 Indium Tin Oxide (ITO)가 가장 각광받고 있지만, Indium의 가격상승과 박막의 열처리를 통해 저항이 증가하는 단점을 가지고 있어 이를 대체 할 새로운 소재 개발이 필요한 상황이다. 그러므로 투명전도체 소재 개발에 있어서 가장 중요한 연구과제는 Indium Tin Oxide(ITO)의 단점을 개선시키고 안정된 고농도의 In-Zn-Sn-O(ITZO) 박막을 성장시키는 것이다. 본 연구에서는 RF스퍼터링법에 의하여 Si wafer에 In-Zn-Sn-O(IZTO)를 $350{\AA}$ 만큼 증착시키고, 1시간 동안 $300^{\circ}C$, $350^{\circ}C$, $400^{\circ}C$로 각각 열처리 하였다. 박막의 전자적, 광학적 특성은 XPS(X-ray Photoelectron Spectroscopy), REELS(Reflection Electron Energy Loss Spectroscopy)를 이용하여 연구하였다. XPS측정결과, ITZO박막은 In-O, Sn-O and Zn-O의 결합을 가지고 있고, 박막의 열처리를 통해 $400^{\circ}C$에서 Zn2p의 피크가 가장 크게 나타나는 반면 In3d와 Sn3d는 열처리를 했을 때가 Room Temperature에서 보다 피크가 작아지는 것을 확인하였다. 이는 $400^{\circ}C$에서 Zn가 표면에 편석됨을 나타낸다. 그리고 REELS를 이용해 Ep=1500 eV에서의 밴드갭을 얻어보면, 밴드갭은 $3.25{\pm}0.05eV$로 온도에 크게 변화하지 않았다. 또한 QUEELS -Simulation에 의한 광학적 특성 분석 결과, 가시광선영역인 380nm~780nm에서의 투과율이 83%이상으로 투명전자소자로의 응용이 가능하다는 것을 보여주었다.

  • PDF

Gas sensing properties of polyacrylonitrile/metal oxide nanofibrous mat prepared by electrospinning

  • Lee, Deuk-Yong;Cho, Jung-Eun;Kim, Ye-Na;Oh, Young-Jei
    • Journal of Sensor Science and Technology
    • /
    • v.17 no.4
    • /
    • pp.281-288
    • /
    • 2008
  • Polyacrylonitrile(PAN)/metal oxide(MO) nanocomposite mats with a thickness of 0.12 mm were electrospun by adding 0 to 10 wt% of MO nanoparticles ($Fe_2O_3$, ZnO, $SnO_2$, $Sb_2O_3-SnO_2$) into PAN. Pt electrode was patterned on $Al_2O_3$ substrate by DC sputtering and then the PAN(/MO) mats on the Pt patterned $Al_2O_3$ were electrically wired to investigate the $CO_2$ gas sensing properties. As the MO content rose, the fiber diameter decreased due to the presence of lumps caused by the presence of MOs in the fiber. The PAN/2% ZnO mat revealed a faster response time of 93 s and a relatively short recovery of 54 s with a ${\Delta}R$ of 0.031 M${\Omega}$ at a $CO_2$ concentration of 200 ppm. The difference in sensitivity was not observed significantly for the PAN/MO fiber mats in the $CO_2$ concentration range of 100 to 500 ppm. It can be concluded that an appropriate amount of MO nanoparticles in the PAN backbone leads to improvement of the $CO_2$ gas sensing properties.

Multi-component $ZnO-In_2O_3-SnO_2$ thin films deposited by RF magnetron co-sputtering

  • Lee, Byoung-Hoon;Hur, Jae-Sung;Back, Sang-Yul;Lee, Jeong-Seop;Song, Jung-Bin;Son, Chang-Sik;Choi, In-Hoon
    • Proceedings of the Korean Society Of Semiconductor Equipment Technology
    • /
    • 2006.10a
    • /
    • pp.68-71
    • /
    • 2006
  • Multi-component $ZnO-In_2O_3-SnO_2$ thin films have been prepared by RF magnetron co-sputtering using targets composed of $In_3Sn_4O_{12}$(99.99%) [1] and ZnO(99.99%) at room temperature. $In_3Sn_4O_{12}$ contains less In than commercial ITO, so that it lowers cost. Working pressure was held at 3 mtorr flowing Ar gas 20 sccm and sputtering time was 30 min. RF power ratio [RF1 / (RFI + RF2)] of two guns in sputtering system was varied from 0 to 1. Each RF power was varied $0{\sim}100W$ respectively. The thickness of the films was $350{\sim}650nm$. The composit ion concentrations of the each film were measured with EPMA, AES and XPS. The low resistivity of $1-2\;{\times}\;10^3$ and an average transmittance above 80% in the visible range were attained for the films over a range of ${\delta}\;(0.3\;{\leq}\;{\delta}\;{\leq}\;0.5)$. The films also showed a high chemical stability with time and a good uniformity.

  • PDF

Stability Improvement of Amorphous-InGaZnO Thin-Film-Transistors Based SnO2 Extended-Gate Filed-Effect-Transistor Using Microwave Annealing

  • Lee, In-Gyu;Im, Cheol-Min;Jo, Won-Ju
    • Proceedings of the Korean Vacuum Society Conference
    • /
    • 2014.02a
    • /
    • pp.420-420
    • /
    • 2014
  • 최근, 과학 기술이 발달함에 따라 현장에서의 실시간 검사 및 자가 지단 등 질병 치유에 대한 사람들의 관심이 증가하고 있으며, 이에 따라 의료, 환경, 산업과 같은 많은 분야에서 바이오 센서에 대한 연구가 활발하게 이루어지고 있다. 그 중, EGFET는 전해질 속의 각종 이온 농도를 전기적으로 측정하는 바이오 센서로, 외부 환경으로부터 안전하고, 제작이 쉬우며, 재활용이 가능하여 비용을 절감 할 수 있다는 장점을 가지고 있다 [1]. EGFET는 감지부와 FET부로 분리된 구조를 가지고 있으며, 감지부의 감지막으로는 Al2O3, HfO2, $TiO_2$, SnO2 와 같은 다양한 물질들이 사용되고 있다. 그 중, SnO2는 우수한 감도와 안정성을 가지고 있는 물질로 추가적인 열처리 공정 없이도 우수한 감지 특성을 나타내기 때문에 본 연구에서 감지막으로 사용하였다. 한편, EGFETs 의 FET부로는 기존의 비정질 실리콘 TFTs 에 비해 10배 이상의 높은 이동도와 온/오프 전류비를 갖는 InGaZnO 를 채널층으로 사용한 TFTs 를 사용하였다. a-IGZO 는 넓은 밴드 갭으로 인해 가시광 영역에서 투명하며, 향후 투명 바이오센서 제작 시, 물질들 사이의 반응을 전기적 신호뿐만 아니라 광학적인 분석 방법으로도 검출이 가능하기에 고 신뢰성을 갖는 센서의 제작이 가능할 것으로 기대된다. 한편, a-IGZO TFTs 의 경우 우수한 전기적 특성을 나타냄에도 불구하고 소자 동작 시 문턱 전압이 불안정하다는 단점이 있으며 [2], 이러한 문제의 개선과 향후 투명 기판 위에서의 소자 제작을 위해서는 저온 열처리 공정이 필수적이다. 따라서, 본 연구에서는 저온 열처리 공정인 u-wave 열처리를 통하여 a-IGZO TFTs 의 전기적 특성 및 안정성을 향상시켰으며, 9.51 [$cm2/V{\cdot}s$]의 이동도와 135 [mV/dec] 의 SS값, 0.99 [V]의 문턱 전압, 1.18E+08의 온/오프 전류 비를 갖는 고성능 스위칭 TFTs 를 제작하였다. 최종적으로, 제작된 a-IGZO TFTs 를 SnO2 감지막을 갖는 EGFETs 에 적용함으로써 우수한 감지 특성과 안정성을 갖는 바이오 센서를 제작하였다.

  • PDF

Influence of Electron Beam Irradiation on the Electrical Properties of Zn-Sn-O Thin Film Transistor (Zn-Sn-O 박막 트랜지스터의 전기적 특성에 대한 전자빔 조사의 영향)

  • Cho1, In-Hwan;Jo, Kyoung-Il;Choi, Jun Hyuk;Park, Hai-Woong;Kim, Chan-Joong;Jun, Byung-Hyuk
    • Korean Journal of Materials Research
    • /
    • v.27 no.4
    • /
    • pp.216-220
    • /
    • 2017
  • The effect of electron beam (EB) irradiation on the electrical properties of Zn-Sn-O (ZTO) thin films fabricated using a sol-gel process was investigated. As the EB dose increased, the saturation mobility of ZTO thin film transistors (TFTs) was found to slightly decrease, and the subthreshold swing and on/off ratio degenerated. X-ray photoelectron spectroscopy analysis of the O 1s core level showed that the relative area of oxygen vacancies ($V_O$) increased from 10.35 to 12.56 % as the EB dose increased from 0 to $7.5{\times}10^{16}electrons/cm^2$. Also, spectroscopic ellipsometry analysis showed that the optical band gap varied from 3.53 to 3.96 eV with increasing EB dose. From the results of the electrical property and XPS analyses of the ZTO TFTs, it was found that the electrical characteristic of the ZTO thin films changed from semiconductor to conductor with increasing EB dose. It is thought that the electrical property change is due to the formation of defect sites like oxygen vacancies.

Temperature dependence of optical energy gaps and thermodynamic function of $Zn_{4}SnSe_{6}$ and $Zn_{4}SnSe_{6}:Co^{2+}$ single crystals ($Zn_{4}SnSe_{6}$$Zn_{4}SnSe_{6}:Co^{2+}$ 단결정에서 광학적 에너지 띠 및 열역학적 함수의 온도의존성 연구)

  • Kim, D.T.;Kim, N.O.;Choi, Y.I.;Kim, B.C.;Kim, H.G.;Hyun, S.C.;Kim, B.I.;Song, C.I.
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
    • /
    • 2002.08a
    • /
    • pp.25-30
    • /
    • 2002
  • The ternary semiconducting compounds of the $A_{4}BX_{6}$(A=Cd, Zn, Hg; B=Si, Sn, Ge; X=S, Se, Te) type exhibit strong fluorescence and high photosensitivity in the visible and near infrared ranges, so these are supposed to be materials applicable to photoelectrical devices. These materials were synthesized and single crystals were first grown by Nitsche, who identified the crystal structure of the single crystals. In this paper. author describe the undoped and $Co^{2+}$-doped $Zn_{4}SnSe_{6}$ single crystals were grown by the chemical transport reaction(CTR) method using iodine of $6mg/cm^{3}$ as a transport agent. For the crystal. growth, the temperature gradient of the CTR furnace was kep at $700^{\circ}C$ for the source aone and at $820^{\circ}C$ for the growth zone for 7-days. It was found from the analysis of x-ray diffraction that undoped and $Co^{2+}$-doped $Zn_{4}SnSe_{6}$ compounds have a monoclinic structure. The optical absorption spectra obtained near the fundamental absorption edge showed that these compounds have a direct energy gaps. These temperature dependence of the optical energy gap were closely investigated over the temperature range 10[K]~300[K]

  • PDF

Influence of Nanoporous Oxide Substrate on the Performance of Photoelectrode in Semiconductor-Sensitized Solar Cells

  • Bang, Jin Ho
    • Bulletin of the Korean Chemical Society
    • /
    • v.33 no.12
    • /
    • pp.4063-4068
    • /
    • 2012
  • Oxide substrates in semiconductor-sensitized solar cells (SSSCs) have a great impact on their performance. $TiO_2$ has long been utilized as an oxide substrate, and other alternatives such as ZnO and $SnO_2$ have also been explored due to their superior physical properties over $TiO_2$. In the development of high-performance SSSCs, it is of significant importance to understand the effect of oxides on the electron injection and charge recombination as these two are major factors in dictating solar cell performance. In addition, elucidating the relationship between these two critical processes and solar cell performance in each oxide is critical in building up the basic foundation of SSSCs. In this study, ultrafast pump-probe laser spectroscopy and open-circuit decay analysis were conducted to examine the characteristics of three representative oxides ($TiO_2$, ZnO, and $SnO_2$) in terms of electron injection kinetics and charge recombination, and the implication of results is discussed.

Preparations of $(Zr_{0.08}Sn_{0.2})TiO_4$ Dielectric Powders by Coprecipitation of $(Zr^{4+}, Ti^{4+})-Hydroxides in the Presence of SnO2 Particles (부분 공침법에 의한 $(Zr_{0.08}Sn_{0.2})TiO_4$ 분말합성 및 유전특성)

  • 임경란;장진욱
    • Journal of the Korean Ceramic Society
    • /
    • v.31 no.11
    • /
    • pp.1293-1298
    • /
    • 1994
  • (Zr, Sn)TiO4 powders were prepared in 0.05~0.13 ${\mu}{\textrm}{m}$ by coprecipitating (Zr4+, Ti4+)hydroxide on SnO2 particles and followed by calcination at 90$0^{\circ}C$ for 2 h. They sinter to 95% of relative density at 140$0^{\circ}C$ for 2 h. and shows dielectric constant, $\varepsilon$r=37.5 and quality factor, Qxf(GHz)=46,000. With 3 mol% of ZnO it sinters to rel=97.5%, $\varepsilon$r=39 and Qxf(GHz)=40,050 at 135$0^{\circ}C$ for 2 h., but raising sintering temperature to 140$0^{\circ}C$ deteriorates quality factor, relative density and microstructure with developing second phase.

  • PDF