• Title/Summary/Keyword: AlN substrate

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Preparation and characterization of AiN Thin Films by RF sputtering method (고주파 때려내기법에 의한 질화알루미늄 박막의 제작과 특성)

  • 정성훈;김영호;문동찬;김선태
    • Electrical & Electronic Materials
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    • v.10 no.7
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    • pp.706-712
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    • 1997
  • AlN(Aluminium Nitride) thin films were prepared using by RF sputtering method on the Si(100) and Si(111) substrates as the parameters of the substrate temperature, RF power, sputtering duration and the $N_2$/Ar ratio and investigated by X-ray diffraction, IR spectrometry, n&k analyzer. For the Si(100) substrate, the AlN thin films of (101) orientation were obtained under the conditions of room temperature and the nitrogen of 60 vol.%. For the Si(111) substrate, the (002) AlN thin films were obtained under the nitrogen of 100 vol.%. In case of the thin film prepared in the condition of above 60 vol.% of the nitrogen, the average value of the surface roughness of the film was 151$\AA$. From the changes of the half widths of E$_1$[TO] phonon bands at the wavenumber of 680$cm^{-1}$ /, it were compared of the crystallinities of the films which were grown under the different conditions. The thicknesses of AlN films were decreased dramatically in the region of the nitrogen of 40~60 vol.%. Its due to the nitridation of the Al target surface and getting low of the sputtering yield by the $N_2$/Ar ratio being increased.

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A study on the crystallographic properties of AlN/Al/SiO$_2$/Si thin film for FBAR (FBAR용 AlN/Al/SiO$_2$/Si 박막의 결정학적 특성에 관한 연구)

  • Kim, G.H.;Keum, M.J.;Choi, H.W.;Kim, K.H.
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2003.07a
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    • pp.151-154
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    • 2003
  • AlN/Al/SiO$_2$/Si thin films for application to FBAR(Film Bulk Acoustic Resonator) devices were prepared by FTS(Facing Targets sputtering system) apparatus which provides a stable discharge at low gas pressures and can deposit high quality thin films because of the substrate located apart from the plasma. The AlN thin films were deposited on a $SiO_2(1{\mu}m)/Si(100)$ substrate using an Al bottom electrode. The process parameters were fixed such as sputering power of 200W, working pressures of 1mTorr and AlN thin film thickness of 800nm, respectively and crytallographic characteristics of AlN thin films were investigated as a function of $N_2$ gas flow rate$[N_2/(N_2+Ar)]$. Thickness of AlN thin films were measured by $\alpha$-step, the crystallographic characteristics and c-axis preferred orientation were evaluated by XRD.

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A Study on the AlN Thin Film on A1$_2$O$_3$ Substrate Prepared by Reactive RF Magnetron Sputtering System for SAW Device Application (A1$_2$O$_3$기판위에 반응성 RF 마그네트론 스퍼터로 증착한 AlN 박막의 SAW소자 응용에 관한 연구)

  • 고봉철;손진운;김경석;엄무수;남창우;이규철
    • The Transactions of the Korean Institute of Electrical Engineers C
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    • v.52 no.7
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    • pp.288-292
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    • 2003
  • AlM thin film has been deposited on A1$_2$O$_3$ substrate by reactive radio frequency(RF) magnetron sputtering method under various operating conditions such as working pressure, fraction of nitrogen partial pressure, and substrate temperature. Scanning Electron Microscope(SEM), X-ray Diffraction(XRD), and Atomic Force Microscope(AFM) have been measured to find out structural properties and preferred orientation of AlN thin films. SAW velocity of IDTs/AlN/Si structure was about 5038[㎧] at the center frequency of 251.9[MHz] and insertion loss was measured to be relatively low value of 35.6[dB]. SAW velocity of IDTs/AlN/A1$_2$O$_3$ structure was improved to be about 5960[㎧] at the center frequency of 296.7[MHz].

Effect of surface roughness of AlN substrate and sintering temperature on adhesion strength of Ag thick film conductors (AlN 기판의 표면조도 및 소결온도가 Ag 후막도체의 접착강도에 미치는 영향)

  • Koo, Bon Keup
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • v.30 no.3
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    • pp.83-90
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    • 2020
  • The effect of substrate surface roughness and sintering temperature on the adhesion strength of Ag-based thick film conductors formed on AlN substrates with excellent thermal conductivity was studied. The adhesion strength of the thick-film conductor manufactured using an AlN substrate having a surface roughness (Ra) of 0.5 was higher than that of a thick-film conductor manufactured using a substrate having a surface roughness greater or smaller than this. In the case of a substrate with a surface roughness of less than 0.5, the contact area between the Ag thick film conductor and the substrate was relatively smaller than that of a substrate with a surface roughness of 0.5, resulting in a lower adhesive strength. On the other hand, when a substrate having a surface roughness of more than 0.5 was used, it was found that the conductor film was not completely adhered to the substrate, and as a result, it was found that the adhesive strength was small. In addition, it was found that the surface smoothness of the Ag-based thick film conductor film obtained by sintering at 850℃ was the best compared to the smoothness of the conductor film obtained by sintering at different sintering temperatures, and as a result, it was found that the adhesive strength of the conductor film was the highest.

Effects of Sand Blasting on TiAlN Coating on WC Hard Metal Alloy Tip (WC위 TiAlN 코팅층에 미치는 Sand Blasting 처리의 영향)

  • Lee, Han-Young
    • Tribology and Lubricants
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    • v.37 no.2
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    • pp.54-61
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    • 2021
  • The effect of the sand blasting before TiAlN coating in the manufacture of WC hard metal alloy tips have been studied. For four different tips, according to the status of processing of the sand blasting and the coating, residual stress measurement by X-ray diffraction and several tests for mechanical properties have been conducted. The results suggest that there was no difference in static mechanical properties, such as hardness, surface roughness and elastic modulus, between two coatings. Furthermore, compressive residual stress was generated equally on their surfaces. Additionally, the compressive residual stress in substrate WC was found to increase greatly when subjected to sand blasting treatment. However, the compressive residual stress decrease after coating regardless of sand blasting treatment. Nevertheless, it is confirmed that the compressive residual stress generated in the coating after sand blasting is less than that in the non-sandblasting coating. This was attributed to the plastic deformation occurring in the WC substrate during coating after sand blasting. In contrast to the scratch test results, sand blasting was assumed to have a negative effect on the adhesion between the coating and substrate. This is because there is a high possibility of microcracks due to plastic deformation in the WC substrate under the coating after sand blasting.

Preparation the AlN thin films with the Al bottom electrode (Al 하부전극을 이용한 AlN 박막의 제작)

  • Kim, Geon-Hi;Keum, Min-Jong;Kim, Hyun-Woong;Kim, Kyung-Hwan
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2004.04b
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    • pp.101-104
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    • 2004
  • In this study AlN/Al thin films were prepared at various conditions, such as $N_2$ gas flow rate $[N_2/(N_2+Ar)]$ from 0.6 to 0.9, a substrate temperature ranging from room temperature to $300^{\circ}C$ and working pressure 1mTorr. We estimated crystallographic characteristics and c-axis preferred orientations of AlN/Al thin films as function of Al electrode surface roughfness. The optimal processing conditions for Al electrode were found at substrate temperature of $300^{\circ}C$, sputtering power of 100W and a working pressure of 2mTorr. In these conditions, we obtained the c-axis preferred orientation of $AlN/Al/SiO_2/Si$ thin film about 4 degree.

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Surface Analysis of Plasma Pretreated Sapphire Substrate for Aluminum Nitride Buffer Layer

  • Jeong, Woo Seop;Kim, Dae-Sik;Cho, Seung Hee;Kim, Chul;Jhin, Junggeun;Byun, Dongjin
    • Korean Journal of Materials Research
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    • v.27 no.12
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    • pp.699-704
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    • 2017
  • Recently, the use of an aluminum nitride(AlN) buffer layer has been actively studied for fabricating a high quality gallium nitride(GaN) template for high efficiency Light Emitting Diode(LED) production. We confirmed that AlN deposition after $N_2$ plasma treatment of the substrate has a positive influence on GaN epitaxial growth. In this study, $N_2$ plasma treatment was performed on a commercial patterned sapphire substrate by RF magnetron sputtering equipment. GaN was grown by metal organic chemical vapor deposition(MOCVD). The surface treated with $N_2$ plasma was analyzed by x-ray photoelectron spectroscopy(XPS) to determine the binding energy. The XPS results indicated the surface was changed from $Al_2O_3$ to AlN and AlON, and we confirmed that the thickness of the pretreated layer was about 1 nm using high resolution transmission electron microscopy(HR-TEM). The AlN buffer layer deposited on the grown pretreated layer had lower crystallinity than the as-treated PSS. Therefore, the surface $N_2$ plasma treatment on PSS resulted in a reduction in the crystallinity of the AlN buffer layer, which can improve the epitaxial growth quality of the GaN template.

The microstructure and adhesive characteristics of Ti-Al-V-N films prepared by reactive magnetron sputtering (반응성 마그네트론 스퍼터링법으로 제조한 Ti-Al-V-N 박막의 미세조직 및 부착특성에 관한 연구)

  • Sohn, Yong-Un;Lee, Young-Ki
    • Journal of the Korean Society for Heat Treatment
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    • v.12 no.3
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    • pp.199-205
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    • 1999
  • The quaternary Ti-Al-V-N films have been grown on glass substrates by reactive dc and rf magnetron sputter deposition from a Ti-6Al-4V target in mixed Ar-$N_2$ discharges. The Ti-Al-V-N films were investigated by means of X-ray diffraction(XRD), electron probe microanalysis(EPMA) and scratch tester. Both XRD and EPMA results indicated that the Ti-Al-V-N films were of single B1 NaCl phase having columnar structure with the (111) preferred orientation. Scratch tester results showed that the adhesion strength of Ti-Al-V-N films which treated with substrate heating and vacuum annealing was superior to that of as-deposited film. The good adhesion strength was also achieved in the double-layer structure of Ti-Al-V-N/Ti-Al-V/Glass.

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A Study on Fabrication of Conductor Patterns on AlN Ceramic Surface by Laser Direct Writing (레이저 직접묘화법에 의한 AlN 기판상의 전도성 패턴 제작에 관한 연구)

  • Lee, Je-Hoon;Seo, Jung;Han, Yu-Hee
    • Laser Solutions
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    • v.3 no.2
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    • pp.25-33
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    • 2000
  • One of perspective direction of microfabrication is direct laser writing technology that allows to create metal, semiconductive and dielectric micropatterns on substrate surface. In this work, a two step method, the combination of seed forming process, in which metallic Al seed was selectively generated on AlN ceramic substrate by direct writing technique using a pulsed Nd : YAG laser and subsequent electroless Ni plating on the activated Al seed, was presented. The effects of laser parameters such as pulse energy, scanning speed and pulse frequency on shape of Alseed and conductor line after electroless Ni plating were investigated. The nature of the laser activated surface is analyzed from XPS data. The line width of this metallic Al and Ni is analyzed using SEM. As a results, Al seed line with 24㎛ width and 100㎛ isolated line space is obtained. Finally, laser direct writing can be applied in the field between thin and thick film technique in electronic industry.

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Design of Normally-Off AlGaN Heterojunction Field Effect Transistor Based on Polarization Engineering (분극 엔지니어링을 통한 상시불통형 질화알루미늄갈륨 이종접합 전계효과 트랜지스터 설계)

  • Cha, Ho-Young;Sung, Hyuk-Kee
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.16 no.12
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    • pp.2741-2746
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    • 2012
  • In this study, we propose a novel structure based on AlGaN substrate or buffer layer to implement a normally-off mode transistor that was difficult to be realized by conventional AlGaN/GaN heterojunction structures. The channel under the gate can be selectively depleted by growing an upper AlGaN barrier with a higher Al mole fraction and a top GaN charge elimination layer on AlGaN substrate or buffer layer. The proposed AlGaN heterojunction field effect transistor can achieve a threshold voltage of > 2 V, which is generally required in power device specification.