• Title/Summary/Keyword: ZnO doping

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Ferromagnetism in Co-doped ZnO thin films (Co-doped ZnO 자성 반도체 박막의 구조 및 강자성 특성)

  • 박정환;유상우;장현명;김민규
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2003.03a
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    • pp.178-178
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    • 2003
  • II-Ⅵ족 반도체 중에서 넓은 밴드갭을 가지는 ZnO에 Mn 이온을 doping할 경우 Tc가 상온보다 높을 것이라는 이론적 계산이 2000년 Science에 발표되었다. 이후 ZnO에 전이금속 이온을 doping하여 상온에서도 강자성을 나타내는 자성 반도체 (DMS)를 만들기 위한 연구가 활발히 진행되고 있다. Co-doped ZnO 박막은 PLD로 증착하였을 경우 Tc가 상온보다 높으나 재현성이 낮은 것으로 알려져 있었다. 그러나 최근 sol-gel 방법을 이용하여 Co-doped ZnO 박막을 제조하면 강자기 특성의 재현성을 높일 수 있다는 결과가 보고되었다. 이에 본 연구에서는 sol-gel 방법을 사용하여 여러 조성의 Co-doped ZnO 박막을 합성한 후 이들의 자성 특성을 검토하였다. 이러한 결과를 바탕으로 Co-doped ZnO 박막에서 강자성 발현의 근원을 규명하고자 (ⅰ) 조성에 따른 Co-doped ZnO의 Raman peak과 EXAFS peak의 변화를 측정하여 구조적 특성과 ZnO 내에서의 Co 이온의 상태를 분석하였으며, (ⅱ) Hall 효과 실험으로 carrier density를 측정함으로써 Fermi 준위에서의 파수 벡터의 크기를 산출하고자 하였다.

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An Investigation of Electrical Properties in Cation-anion Codoped ZnO by Atomic Layer Deposition (원자층 증착법 기반 양이온-음이온 이중 도핑 효과에 따른 ZnO 박막의 전기적 특성 비교 연구)

  • Dong-eun Kim;Geonwoo Kim;Kyung-Mun Kang;Akendra Singh Chabungbam;Hyung-Ho Park
    • Journal of the Microelectronics and Packaging Society
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    • v.30 no.3
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    • pp.94-101
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    • 2023
  • Zinc oxide(ZnO) is a semiconductor material with a bandgap of 3.37 eV and an exciton binding energy of 60 meV for various applications. Recently ZnO has been proven to enhance its electrical properties for utilization as an alternative for transparent conducting oxide (TCO) materials. In this study, cation(Al, Ga)-anion(F) single and double doped ZnO thin films were grown by atomic layer deposition (ALD) to enhance the electrical properties. The structural and optical properties of doped ZnO thin films were analyzed, and doping effects were confirmed to electrical characteristics. In single doped ZnO, it was observed that the carrier concentration was increased after doping, acting as a donor to ZnO. Among the single doping elements, F doped ZnO(FZO) showed the highest mobility and conductivity due to the passivation effect of oxygen vacancies. In the case of double doping, higher electrical characteristics were observed compared to single doping. Among the samples, Al-F doped ZnO(AFZO) exhibited the lowest resistance value. This results can be attributed to an increase in delocalized electron states and a decrease in lattice distortion resulting from the differences in ionic radius. The partial density of states(PDOS) was also analyzed and observed to be consistent with the experimental results.

Work function engineering on transparent conducting ZnO thin films

  • Heo, Gi-Seok;Hong, Sang-Jin;Park, Jong-Woon;Choi, Bum-Ho;Lee, Jong-Ho;Shin, Dong-Chan
    • 한국정보디스플레이학회:학술대회논문집
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    • 2007.08b
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    • pp.1706-1707
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    • 2007
  • A possibility of work function engineering on ZnO thin film is studied by in-situ and ex-situ doping process. The work function of ZnO thin film decreases with increasing boron and phosphorus doping quantity. But, the work function of Al-doped ZnO (AZO) thin film increases as the boron doping quantity incresess. The range of work function change on ZnO thin films is 3.5 eV to 5.5 eV. This result shows that the work function of ZnO thin film is indeed engineerable by changing materials of dopants and their compositional distribution of surface. We also discuss the possible mechanism of work function engineering on ZnO thin films.

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Electrical and Optical Properties of Ti-ZnO Films Grown on Glass Substrate by Atomic Layer Deposition (원자층 증착법을 통하여 유리 기판에 증착한 Ti-ZnO 박막의 전기적 광학적 특성)

  • Lee, U-Jae;Kim, Tae-Hyeon;Gwon, Se-Hun
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2018.06a
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    • pp.57-57
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    • 2018
  • Zinc-oxide (ZnO), II-VI semiconductor with a wide and direct band gap (Eg: 3.2~3.4 eV), is one of the most potential candidates to substitute for ITO due to its excellent chemical, thermal stability, specific electrical and optoelectronic property. However, the electrical resistivity of un-doped ZnO is not low enough for the practical applications. Therefore, a number of doped ZnO films have been extensively studied for improving the electrical conductivities. In this study, Ti-doped ZnO films were successfully prepared by atomic layer deposition (ALD) techniques. ALD technique was adopted to careful control of Ti doping concentration in ZnO films and to show its feasible application for 3D nanostructured TCO layers. Here, the structural, optical and electrical properties of the Ti-doped ZnO depending on the Ti doping concentration were systematically presented. Also, we presented 3D nanostructured Ti-doped ZnO layer by combining ALD and nanotemplate processes.

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Zn and Ni Doping Effects on Antiferromagneticv Spin Fluctuation in YBa$_2Cu_3O_7$ (Zn와 Ni의 치환이 YBa$_2Cu_3O_7$의 반강자성적 스핀요동에 주는 효과)

  • Han, Ki-Seong;Mean, Byeong-Jin;Lee, Kyu-Hong;Seo, Seung-Won;Kim, Do-Hyeong;Lee, Moo-Hee;Lee, Won-Chun;Cho, Jeong-Suk
    • 한국초전도학회:학술대회논문집
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    • v.9
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    • pp.247-250
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    • 1999
  • We have performed $^{63,65}$Cu nuclear quadrupole resonance (NQR) measurements on Zn and Ni doped YBa$_2Cu_3O_7$ (YBa$_2Cu_{3-x}M_xO_7$, M=Zn or Ni, x = 0.00 ${\sim}$ 0.09). Doping effects are markedly different in relaxation rates as well as in superconducting transition temperatures. Both the spin-lattice and the spin-spin relaxation rates decrease for Zn doped YBCO. However, those increase for Ni doped YBCO. This contrast in local electronic dynamics provides a clear microscopic evidence that Zn forms no local moment, while Ni develops a local moment. Consequently, the antiferromagnetic spin fluctuation is suppressed by Zn doping whereas it is preserved by Ni doping.

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Effect of Ga-doping on the properties of ZnO films grown on glass substrate at room temperature by radio frequency magnetron sputtering (RF 마그네트론 스퍼터링 방법으로 상온에서 유리기판 위에 성장시킨 ZnO의 성질에 미치는 Ga 도핑 효과)

  • Kim, G.C.;Lee, J.S.;Lee, S.K.;Kim, D.H.;Lee, S.H.;Moon, J.H.;Jeon, M.H.
    • Journal of the Korean Vacuum Society
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    • v.17 no.1
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    • pp.40-45
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    • 2008
  • We present the effect of Ga-doping on the electrical, structural and optical properties of ZnO layers with a thickness of ${\sim}500nm$ deposited on glass substrates. Polycrystalline ZnO and Ga-doped ZnO (GZO) layers were deposited by radio frequency (rf) magnetron sputtering at room temperature. Based on the X-ray diffraction (XRD) and transmission electron microscopy (TEM) data, the crystalline quality of Ga-doped ZnO film was improved and GZO film has a preferred orientation along with the (002) crystal direction. The transmittance of the GZO film was enhanced by 10% in the visible region from that of the ZnO film. From photoluminescence (PL) data, the ratio of intensity of near band edge (NBE) emission to deep level (DL) emission was as high as 2.65:1 and 1.27:1 in the GZO and ZnO films, respectively. The res istivities of GZO and ZnO films were measured to be 1.27 and 1.61 $\Omega{\cdot}cm$, respectively. The carrier concentrations of ZnO and GZO film were approximately 1018 and 1020 $cm^2$/Vs, respectively. Based on our experimental results, the Ga-doping improves the electrical, structural and optical properties of ZnO film with potential application.

Photoluminescence Enhancement of Y2O3:Eu3+ Red Phosphor Prepared by Spray Pyrolysis using Aliovalent Cation Substitution and Organic Additives (이가 양이온 금속 친환 및 유기 첨가제를 이용하여 분무열분해법으로 제조된 Y2O3:Eu3+ 적색 형광체의 휘도 개선)

  • Min, Byeong Ho;Jung, Kyeong Youl
    • Journal of Powder Materials
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    • v.27 no.2
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    • pp.146-153
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    • 2020
  • The co-doping effect of aliovalent metal ions such as Mg2+, Ca2+, Sr2+, Ba2+, and Zn2+ on the photoluminescence of the Y2O3:Eu3+ red phosphor, prepared by spray pyrolysis, is analyzed. Mg2+ metal doping is found to be helpful for enhancing the luminescence of Y2O3:Eu3+. When comparing the luminescence intensity at the optimum doping level of each Mg2+ ion, the emission enhancement shows the order of Zn2+ ≈ Ba2+ > Ca2+ > Sr3+ > Mg2+. The highest emission occurs when doping approximately 1.3% Zn2+, which is approximately 127% of the luminescence intensity of pure Y2O3:Eu3+. The highest emission was about 127% of the luminescence intensity of pure Y2O3:Eu3+ when doping about 1.3% Zn2+. It is determined that the reason (Y, M)2O3:Eu3+ has improved luminescence compared to that of Y2O3:Eu3+ is because the crystallinity of the matrix is improved and the non-luminous defects are reduced, even though local lattice strain is formed by the doping of aliovalent metal. Further improvement of the luminescence is achieved while reducing the particle size by using Li2CO3 as a flux with organic additives.

Fabrication and Characteristics of Li-doped ZnO Thin Films for SAW Filter Applications

  • Ha, Jae-Soo;Kim, Kwang-Ho
    • The Korean Journal of Ceramics
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    • v.3 no.2
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    • pp.110-115
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    • 1997
  • Li-doped ZnO films were prepared on Corning 1737 glass substrate by an rf magnetron sputtering technique using ZnO targets with various $Li_2CO_3$ contents ranging from 0 to 10 mol%. The effects of Li doping on the crystallinity and electrical properties of ZnO films were studied for their SAW filter applications. The film resistivity largely increased without suppressing the c-axis orientation and crystallinity with a small addition of Li. Heat treatment of the film at 40$0^{\circ}C$ induced that the film resistivity, c-axis orientation and crystallinity slightly increased. However, heat treatment of the film at 50$0^{\circ}C$ resulted in much lower resistivity than that of as-deposited film due to the increase of electron concentration caused by the evaporationof Li atoms from the ZnO film. Large addition of Li into the ZnO film rather diminished the film resistivity and suppressed the c-axis growth. It was concluded that a small doping of Li into the ZnO film and heat treatment at 40$0^{\circ}C$ caused the film resistivity to be high enough for SAW filter applications without suppression of the c-axis orientation and crystallinity.

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Development of Inverted Organic Photovoltaics with Anion doped ZnO as an Electron Transporting Layer

  • Jeong, Jae Hoon;Hong, Kihyon;Kwon, Se-Hun;Lim, Dong Chan
    • Journal of the Korean institute of surface engineering
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    • v.49 no.6
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    • pp.490-497
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    • 2016
  • In this study, 3-dimensional ripple structured anion (chlorine) doped ZnO thin film are developed, and used as electron transporting layer (ETL) in inverted organic photovoltaics (I-OPVs). Optical and electrical characteristics of ZnO:Cl ETL are investigated depending on the chlorine doping ratio and optimized for high efficient I-OPV. It is found that optimized chlorine doping on ZnO ETL enhances the ability of charge transport by modifying the band edge position and carrier mobility without decreasing the optical transmittance in the visible region, results in improvement of power conversion efficiency of I-OPV. The highest performance of 8.79 % is achieved for I-OPV with ZnO:Cl-x (x=0.5wt%), enhanced ~10% compared to that of ZnO:Cl-x (x=0wt%).