• Title/Summary/Keyword: Vacuum ultraviolet

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Structural Evolution of ZnO:Ga Thin Film on Profiled Substrate Grown by Radio Frequency Sputtering

  • Sun, J.H.;Kim, J.H.;Ahn, B.G.;Park, S.Y.;Jung, E.J.;Lee, J.H.;Kang, H.C.
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.72-72
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    • 2011
  • Recently, Zinc oxide (ZnO) nano-structures have been received attractive attention because of their outstanding optical and electrical properties. It might be a promising material considered for applications to photonic and electronic devices such as ultraviolet light emitting diode, thin film transistor, and gas sensors. ZnO nano-structures can be typically synthesized by the VLS growth mode and self-assembly. In the VLS growth mode using various growth techniques, the noble metal catalysts such as Au and Sn were used. However, the growth of ZnO nano-structures on nano-crystalline Au seeds using radio frequency (RF) magnetron sputtering might be explained by the profile coating, i.e. the ZnO nano-structures were a morphological replica of Au seeds. Ga doped ZnO (ZnO:Ga) nano-structures using this concept were synthesized and characterized by XRD, AFM, SEM, and TEM. We found that surface morphology is drastically changed from initial islands to later sun-flower typed nano-structures. We will present the structural evolution of ZnO:Ga nano-structures with increasing the film thickness.

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Electronic properties of MgO films

  • Lee, Sang-Su;Chae, Hong-Cheol;Yu, Seu-Ra-Ma;Lee, Seon-Yeong;Gang, Hui-Jae
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.345-345
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    • 2011
  • MgO는 암염구조를 가진 전형적인 이온 결합성 화합물로서 7.8eV의 띠틈을 갖고 흡습성이 강하다. 면 방전 구조 PDP에서 MgO 보호막은 면 방전으로 인한 유전층의 식각을 보호하고 2차 전자 방출을 통해 방전 전압을 낮추는 역할을 한다. 하지만 MgO 보호막은 증착시 흡수된 수분이 제거되어야 하고, 방전 특성 개선 및 방전 효율 향상을 위해 가공 처리에 관한 연구가 진행 되어야 한다. 본 연구는 MgO 보호막의 전자적 특성의 변화를 알아보기 위해 $O_2$ 분위기에서 전자빔 증착법을 이용해 MgO Powder를 사용하여 시료를 제작하였다. 표면에 흡착된 수분제거로 인한 특성 변화를 알아보기 위해 진공 챔버내에서 시료를 $500^{\circ}C{\sim}550^{\circ}C$의 열처리를 실시한 후 XPS(X-ray Photoelectron Spectroscopy), REELS(Reflection Electron Energy Loss Spectroscopy), UPS(Ultraviolet photoelectron Spectroscopy)를 이용하여 전자적 특성을 연구하였다. XPS 측정결과 시료의 열처리를 통해 C1s spectrum의 O-C=O(289eV) binding energy가 없어져 박막에 흡착된 불순물이 제거 되었으며 O1s spectrum에서 Hydroxides가 감소하고 530.0eV의 MgO 결합에너지쪽으로 커짐으로써 박막의 구조를 확인할 수 있었다. 그리고 $O^2$ 분위기에서 성장시킨 MgO 박막 기판을 열처리 후 REELS를 이용해 띠틈을 얻어보면 Ep=500eV에서 띠틈이 6.77eV, Ep=1500eV에서 띠틈이 7.33eV로 각각 측정되었다. Ep=500eV의 REELS 스펙트럼으로부터 산소 결함에 의한 표면 F Center는 4.22eV로 확인되었다.

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PECVD를 이용한 광 흡수층에서의 Germane 유량변화가 a-SiGe:H 박막 태양전지에 미치는 영향

  • Son, Won-Ho;Kim, Ae-Ri;Ryu, Sang-Hyeok;Choe, Si-Yeong
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.157-157
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    • 2011
  • 박막형태로 제작이 가능한 비정질 실리콘은 결정질 실리콘에 비하여 AM-1 (Air Mass 1:100mW/cm2)조건하에서 10-3 S/cm 정도의 높은 광전기전도도와 가시광선 영역($4000{\sim}7000{\AA}$)에서 약 10배의 높은 광흡수계수를 가지며, $300^{\circ}C$ 이하의 낮은 기판온도에서 다양한 기판위에 대면적으로 제작이 가능할 뿐만 아니라 제작공정이 단순하여 제작비용이 저렴하다는 이점이 있다. 본 실험에서 제작된 모든 박막은 PECVD로 증착하였으며 구조는 p-i-n superstrate형 구조를 사용하였고, 각 박막의 두께는 p-a-Si:H/i-a-SiGe:H/n-a-Si:H ($300{\AA}/2000{\AA}/600{\AA}$)으로 고정하였다. a-Si:H (hydrogenated amorphous silicon) 태양전지의 광 흡수층인 i-layer에서의 germane 가스 유량 변화(0, 20, 40. 60, 80, 100 sccm)에 대한 흡수율의 차이를 UV/Vis/Nir spectrophotometer (ultraviolet/visible/near infrared spectrophotometer)를 통해 확인하고, 그에 따른 a-Si:H 박막 태양전지를 제작하여 solar simulator를 사용하여 AM 1.5 G의 환경 조건에서 태양전지 특성을 평가하였다. 그 결과 germane 가스 유량이 증가함에 따라 파장에 대한 absorptance (a.u.)값이 증가함을 알 수 있었으며, 흡수되는 파장영역의 범위가 장파장으로 확대됨을 확인할 수 있었다. 또한 germane 가스 유량이 60 sccm 일때 a-SiGe:H 박막 태양전지 변환효율이 3.80%로 최대값을 가졌다. 실험에서 germane 가스 유량이 증가할수록 흡수율이 높아져 태양전지특성이 향상될 거라 예상 했지만, 100 sccm보다 60 sccm일 때가 단락전류밀도 값과 변환효율이 높다는 것을 확인할 수 있었다. 이는 각 layer사이에 계면상의 문제가 있을 거라 예상되며 직렬저항측정을 통해 확인할 수 있다.

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Measurement of EUV Emission and its Plasma Parameters Generated from the Coaxial Plasma Focus of Mather and Hypocycloidal Pinched Electrodes

  • Lee, Sung-Hee;Lee, Kyung-Ae;Hong, Young-June;Uhm, Han-Sup;Choi, Eun-Ha
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.332-332
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    • 2011
  • The extreme ultraviolet (EUV) radiation, whose wavelength is from 120 nm down to 10 nm, and the energy from 10 eV up to 124 eV, is widely utilized such as in photoelectron spectroscopy, solar imaging, especially in lithography and soft x-ray microscopy. In this study, we have investigated the plasma diagnostics as well as the debris characteristics between the two types of dense plasma focusing devices with coaxial electrodes of Mather and hypocycloidal pinch (HCP), respectively. The EUV emission intensity, electron temperature and plasma density have been investigated in these cylindrical focused plasma along with the debris characteristics. An input voltage of 5 kV has been applied to the capacitor bank of 1.53 uF and the diode chamber has been filled with Ar gas at pressure ranged from 1 mTorr and 180 mTorr. The inner surface of the cathode was covered by polyacetal insulator. The central anode electrode has been made of tin. The wavelength of the EUV emission has been measured to be in the range of 6~16 nm by a photo-detector (AXUV-100 Zr/C, IRD). The visible emission has also been measured by the spectrometer with the wavelength range of 200~1,100 nm. The electron temperature and plasma density have been measured by the Boltzmann plot and Stark broadening methods, respectively, under the assumption of local thermodynamic equilibrium (LTE).

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Self-Assembled ZnO Hexagonal Nano-Disks Grown by RF Sputtering

  • Jeong, Eun-Ji;Kim, Ji-Hyeon;Kim, Su-Jin;Gang, Hyeon-Cheol
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.461-461
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    • 2013
  • Over the last decade, zinc oxide (ZnO) thin films have attracted considerable attention owing to large band gap of 3.37 eV and large exciton binding energy of 60 meV at room temperature [1-3]. Recent interest in ZnO related researches has been switched into the fabrication and characterization of low-dimensional nanostructures, such as nano-wires and nano-dots that can be applicable to manufacture the optoelectronic devices such as ultraviolet lasers, light-emitting-diodes and detectors. Since the optical properties of ZnO nano-structures might be distinct from those of bulk materials or thin films, the low-dimensional phenomena should be examined further. In order to utilize such advanced optoelectronic devices, one of the challenges is how to control the surface state related emissions that are drastically increased with increasing the density of the nano-structures and the surface-to-volume ratio. This paper reports the synthesis and characterization of self-assembled ZnO hexagonal nano-disks grown by radio-frequency magnetron sputtering. X-ray diffraction data and scanning electron microscopy data showed that ZnO hexagonal nano-disks were nucleated on top of the flat surfaces as the film thickness reached to 1.56 ${\mu}m$ and then the number of nano-disks increased with increasing the film thickness. The lateral size of hexagonal nano-disks was ~720 nm and height was ~74 nm. The strong photo luminescence spectra obtained at 10 K was also observed, which was assigned to a surface exciton emission at 3.3628 eV arising from the surface sites of hexagonal nano-disks.

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Controlled Synthesis of Hexagonal Boron Nitride on Cu Foil Using Chemical Vapor Deposition

  • Han, Jaehyun;Lee, Jun-Young;Kwon, Heemin;Yeo, Jong-Souk
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.630-630
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    • 2013
  • Recently, atomically smooth hexagonal boron nitride(h-BN) known as a white graphene has drawn great attention since the discovery of graphene. h-BN is a III-V compound and has a honeycomb structure very similar to graphene with smaller lattice mismatch. Because of strong covalent sp2bonds like graphene, h-BN provides a high thermal conductivity and mechanical strength as well as chemical stability of h-BN superior to graphene. While graphene has a high electrical conductivity, h-BN has a highly dielectric property as an insulator with optical band gap up to 6eV. Similar to the graphene, h-BN can be applied to a variety of field, such as gate dielectric layers/substrate, ultraviolet emitter, transparent membrane, and protective coatings. However, up until recently, obtaining and controlling good quality monolayer h-BN layers have been too difficult and challenging. In this work, we investigate the controlled synthesis of h-BN layers according to the growth condition, time, temperature, and gas partial pressure. h-BN is obtained by using chemical vapor deposition on Cu foil with ammonia borane (BH3NH3) as a source for h-BN. Scanning Transmission Electron Microscopy (STEM, JEOL-JEM-ARM200F) is used for imaging and structural analysis of h-BN layer. Sample's surface morphology is characterized by Field emission scanning electron microscopy (SEM, JEOL JSM-7100F). h-BN is analyzed by Raman spectroscopy (HORIBA, ARAMIS) and its topographic variations by Atomic force microscopy (AFM, Park Systems XE-100).

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Structural, Morphological, and Optical Properties of AlN Thin Films Subjected to Oxygen Flow Ratio (산소 유량비 변화에 따른 AlN 박막의 구조, 표면 및 광학적 특성)

  • Cho, Shin-Ho;Kim, Moon-Hwan
    • Journal of the Korean Vacuum Society
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    • v.19 no.4
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    • pp.287-292
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    • 2010
  • We have investigated the effects of oxygen flow ratios on the structural, morphological, and optical properties of AlN thin films grown by using radio-frequency reactive magnetron sputtering. The AlN thin films were deposited at $300^{\circ}C$ of substrate temperature, and the reactive gas were supplied with both nitrogen and oxygen. The oxygen flow ratio was varied by controlling the amount of oxygen with respect to the total mixed gases, 0%, 10%, 15%, 20%, 25%, and 30%. The structural, morphological, and optical properties of the deposited AlN thin films were examined by using X-ray diffractometer, scanning electron microscopy, and ultraviolet-visible spectrophotometer. The AlN thin film grown at 10% of oxygen flow ratio indicated an average transmittance of 91.3% in the wavelength range of 350~1,100 nm and an optical band gap of 4.30 eV. The experimental results suggest that AlN thin films can be deposited optionally by varying the oxygen flow ratio.

Tungsten oxide interlayer for hole injection in inverted organic light-emitting devices

  • Kim, Yun-Hak;Park, Sun-Mi;Gwon, Sun-Nam;Kim, Jeong-Won
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.380-380
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    • 2010
  • Currently, organic light-emitting diodes (OLEDs) have been proven of their readiness for commercialization in terms of lifetime and efficiency. In accordance with emerging new technologies, enhancement of light efficiency and extension of application fields are required. Particularly inverted structures, in which electron injection occurs at bottom and hole injection on top, show crucial advantages due to their easy integration with Si-based driving circuits for active matrix OLED as well as large open area for brighter illumination. In order to get better performance and process reliability, usually a proper buffer layer for carrier injection is needed. In inverted top emission OLED, the buffer layer should protect underlying organic materials against destructive particles during the electrode deposition, in addition to increasing their efficiency by reducing carrier injection barrier. For hole injection layers, there are several requirements for the buffer layer, such as high transparency, high work function, and reasonable electrical conductivity. As a buffer material, a few kinds of transition metal oxides for inverted OLED applications have been successfully utilized aiming at efficient hole injection properties. Among them, we chose 2 nm of $WO_3$ between NPB [N,N'-bis(1-naphthyl)-N,N'-diphenyl-1,1'-biphenyl-4,4'-diamine] and Au (or Al) films. The interfacial energy-level alignment and chemical reaction as a function of film coverage have been measured by using in-situ ultraviolet and X-ray photoelectron spectroscopy. It turned out that the $WO_3$ interlayer substantially reduces the hole injection barrier irrespective of the kind of electrode metals. It also avoids direct chemical interaction between NPB and metal atoms. This observation clearly validates the use of $WO_3$ interlayer as hole injection for inverted OLED applications.

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몰리브덴 산화물이 도핑한 NPB 층과 플러렌/리튬 플루오라이드 층을 이용한 유기발광소자의 발광특성

  • Gwon, Jae-Uk;Im, Jong-Tae;Yeom, Geun-Yeong
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.449-449
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    • 2010
  • 유기발광소자(organic light-emitting diodes, OLEDs)는 저공정비용, 경량화, 가용성 및 대면적화 등의 장점으로 조명 분야와 디스플레이 분야로의 응용 가능성으로 인해 크게 주목을 받아 왔다. 이러한 OLED 소자의 고효율, 고휘도 및 저소비전력 등을 구현하기 위해서는 전극으로부터 전하 주입 층으로 효율적인 전하 주입이 요구된다. 즉, 각 전극의 폐르미 준위로부터 전하 전도준위대로의 전하주입 장벽이 없어야 한다. 본 연구에서는 홀 주입장벽이 없는 정공주입 층으로 $MoO_x$(molybdenum oxide)가 도핑된 NPB(N, N'-diphenyl-N, N'-bis(1-naphthyl)-1,1'-biphenyl-4,4'-diamine) 층을 사용하여 hole-only 소자를 제작하고 전류-전압 특성을 통해 양극으로부터 홀주입 층으로의 hole-ohmic 특성을 고찰했다. 또한, 전자 주입장벽이 없는 전자주입 층으로 $C_{60}$(fullerene)/LiF(lithum fluoride)의 이종 층을 사용하여 electron-only 소자를 제작하고 음극으로부터 전자주입 층으로의 전자 ohmic 특성을 조사했다. 또한, 전극으로부터 전하주입 층으로 ohmic 특성을 더 자세히 이해하기 위하여 전하주입 층의 자외선 광방출 스펙트럼(ultraviolet photoemission spectra)을 조사했다. 한편, glass/ITO/$MoO_x$-doped NPB (x%: x=0,25, 50 및 75; 5nm)/NPB (63nm)/$Alq_3$ (37nm)/$C_{60}$ (5nm)/LiF (1nm)/Al (100nm)로 구성된 all-ohmic OLED 소자의 발광특성은 $MoO_x$의 도핑 농도가 25%이상일 때 최적의 특성을 보여줬다. 이러한 현상은 정공주입 층에서 p형 도핑 농도의 증가에 따른 정공 농도의 증가에 기인한다. 또한 $MoO_x$의 도핑 농도의 증가에 따라 정공주입 층의 new gap state와 전극의 페르미 준위의 pinning에 기인한다. 25%의 $MoO_x$을 가진 OLED소자는 7.2V의 낮은 전압에서 $58300 cd/m^2$의 높은 휘도를 보여줬다.

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Optical Diagnostics for Pulse-discharged Plasma by Marx Generator and Its Application for Modifications of Hemoglobin and Myoglobin Proteins

  • Park, Ji Hoon;Attri, Pankaj;Hong, Young June;Park, Bong Sang;Jeon, Su Nam;Choi, Eun Ha
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.08a
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    • pp.176.2-176.2
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    • 2013
  • Property of optical diagnostics for pulse-discharged plasma in liquid and its biological applications to proteins are investigated by making use of high voltage Marx generator. The Marx generator has been consisted of 5 stages, where each charging capacitor is 0.5 ${\mu}F$, to generate a high voltage pulse with rising time of $1{\mu}s$. We have applied an input voltage of 6 kV to the each capacitor of 0.5 ${\mu}F$. High voltage pulsed plasma has been generated inside a polycarbonate tube by a single-shot operation, where the breakdown voltage is measured to be 7 kV, current of 1.2 kA, and pulse width of ~ 1 ${\mu}s$ between the two electrodes of anode-cathode whose material is made of tungsten pin, which are immersed into the liquids. We have investigated the emitted hydrogen lines for optical diagnostics of high voltage pulsed plasma. The emission line of 656.3 nm from $H-{\alpha}$ and 486.1 nm from $H-{\beta}$ have been measured by a monochromator. If we assumed that the focused plasma regions satisfy the local thermodynamic equilibrium conditions, the electron temperature and density of the high voltage pulsed plasma in liquid could be obtained by the Stark broadening of optical emission spectroscopy. For the investigation of the influence of pulsed plasma on biological proteins, we have exposed it onto the proteins such as hemoglobin and myoglobin. The structural changes in these proteins and their analysis have also been obtained by circular dichroism (CD) and ultraviolet (UV) visible spectroscopy.

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