• Title/Summary/Keyword: SDB(Silicon Wafer Direct Bonding)

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The Behavior of Intrinsic Bubbles in Silicon Wafer Direct Bonding (실리콘 웨이퍼 직접접합에서 내인성 Bubble의 거동에 관한 연구)

  • Moon, Do-Min;Jeong, Hae-Do
    • Journal of the Korean Society for Precision Engineering
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    • v.16 no.3 s.96
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    • pp.78-83
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    • 1999
  • The bonding interface is dependent on the properties of surfaces prior to SDB(silicon wafer direct bonding). In this paper, we prepared silicon surfaces in several chemical solutions, and annealed bonding wafers which were combined with thermally oxidized wafers and bare silicon wafers in the temperature range of $600{\times}1000^{\circ}C$. After bonding, the bonding interface is investigated by an infrared(IR) topography system which uses the penetrability of infrared through silicon wafer. Using this procedure, we observed intrinsic bubbles at elevated temperatures. So, we verified that these bubbles are related to cleaning and drying conditions, and the interface oxides on silicon wafer reduce the formation of intrinsic bubbles.

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Fabrication and Analysis of SDB-Silicon Direct Bonding-IGBT with high speed and high efficiency (SDB(Silicon Direct Bonding)을 이용한 초고속 고효율 IGBT 제작 및 분석)

  • Kim, Soo-Seong;Kim, Tae-Hoon
    • Proceedings of the KIEE Conference
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    • 1997.07d
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    • pp.1267-1269
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    • 1997
  • 본 논문에서는 SDB(Silicon Direct Bonding) 기술을 적용하여 빠른 스위칭 속도 및 낮은 도통 전압을 갖는 1200v 10A n-ch IGBT를 제작하였다. 기존의 epi wafer를 이용한 IGBT 제작시 스위칭 속도 개선을 위한 전자조사 방법을 사용하지 않고 buffer의 농도를 증가시켜 아노드 영역의 정공 주입 효율을 제어하여 90ns의 스위칭 속도를 가지며, 2.0V의 도통전압을 갖는 IGBT를 구현하였으며, SDB IGBT 제작시 bonding 계면의 문제 및 표면의 particle 및 결함이 소자의 전기적 특성에 미치는 영향을 고찰하였으며, 이를 실험 결과와 비교 평가하였다.

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High Temperature Silicon Pressure Sensor of SDB Structure (SDB 구조의 고온용 실리콘 압력센서)

  • Park, Jae-Sung;Choi, Deuk-Sung;Kim, Mi-Mok
    • Journal of the Institute of Electronics and Information Engineers
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    • v.50 no.6
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    • pp.305-310
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    • 2013
  • In this paper, the pressure sensor usable in a high temperature, using a SDB(silicon-direct-bonding) wafer of Si/$SiO_2$/Si-sub structure was provided and studied the characteristic thereof. The pressure sensor produces a piezoresistor by using a single crystal silicon as a first layer of SDB wafer, to thus provide a prominent sensitivity, and dielectrically isolates the piezoresistor from a silicon substrate by using a silicon dioxide layer as a second layer thereof, to be thus usable even under the high temperature over $120^{\circ}C$ as a limited temperature of a general silicon sensor. The measured result for a pressure sensitivity of the pressure sensor has a characteristic of high sensitivity, and its tested result for an output of the sensor further has a very prominent linearity and hysteresis characteristic.

A study on Bubble-like Defects in Silicon Wafer Direct Bonding (실리콘 웨이퍼 직접 접합에서 기포형 접합 결합에 관한 연구)

  • Mun, Do-Min;Hong, Jin-Gyun;Yu, Hak-Do;Jeong, Hae-Do
    • Korean Journal of Materials Research
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    • v.11 no.3
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    • pp.159-163
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    • 2001
  • The success of SDB (silicon wafer direct bonding) technology can be estabilished by bonding on the bonded interface with no defects and Preventing temperature dependent bubbles. In this research, we observed the behavior of the intrinsic bubbles by transmitting the infrared light and the increase of the bubble pressure was found. And, the $SiO_2$-$SiO_2$ bonded wafer was achieved, which generates no intrinsic bubbles in the annealing under the atmospheric pressure. The intrinsic bubbles in the $SiO_2$-$SiO_2$ bonded wafer were generated in the annealing in the ultra high vacuum. This experimental result shows the relation between the bubble growth and the pressure.

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ANALYSIS OF THE EFFECT OF HYDROXYL GROUPS IN SILICON DIRECT BONDING USING FT-IR (규소 기판 접합에 있어서 FT-IR을 이용한 수산화기의 영향에 관한 해석)

  • Park, Se-Kwang;Kwon, Ki-Jin
    • Journal of Sensor Science and Technology
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    • v.3 no.2
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    • pp.74-80
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    • 1994
  • Silicon direct bonding technology is very attractive for both silicon-on-insulator devices and sensor fabrication because of its thermal stress free structure and stability. The process of SDB includes hydration of silicon wafer and heat treatment in a wet oxidation furnace. After hydration process, hydroxyl groups of silicon wafer were analyzed by using Fourier transformation-infrared spectroscopy. In case of hydrophilic treatment using a ($H_{2}O_{2}\;:\;H_{2}SO_{4}$) solution, hydroxyl groups are observed in a broad band around the 3474 $cm^{-1}$ region. However, hydroxyl groups do not appear in case of diluted HF solution. The bonded wafer was etched by using tetramethylammonium hydroxide etchant. The surface of the self etch-stopped silicon dioxide is completely flat, so that it can be used as sensor applications such as pressure, flow and acceleration, etc..

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Fabrication of SiCOI Structures Using SDB and Etch-back Technology for MEMS Applications (SDB와 etch-back 기술에 의한 MEMS용 SiCOI 구조 제조)

  • Jung, Su-Yong;Woo, Hyung-Soon;Chung, Gwiy-Sang
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2003.07b
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    • pp.830-833
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    • 2003
  • This paper describes the fabrication and characteristics of 3C-SiCOI sotctures by SDB and etch-back technology for high-temperature MEMS applications. In this work, insulator layers were formed on a heteroepitaxial 3C-SiC film grown on a Si(001) wafer by thermal wet oxidation and PECVD process, successively. The pre-bonding of two polished PECVD oxide layers made the surface activation in HF and bonded under applied pressure. The wafer bonding characteristics were evaluated by the effect of HF concentration used in the surface treatment on the roughness of the oxide and pre-bonding strength. Hydrophilic character of the oxidized 3C-SiC film surface was investigated by ATR-FTIR. The strength of the bond was measured by tensile strengthmeter. The bonded interface was also analyzed by SEM. The properties of fabricated 3C-SiCOI structures using etch-back technology in TMAH solution were analyzed by XRD and SEM. These results indicate that the 3C-SiCOI structure will offers significant advantages in the high-temperature MEMS applications.

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Development of the high temperature silicon pressure sensor (고온용 실리콘 압력센서 개발)

  • Kim, Mi-Mok;Chul, Nam-Tae;Lee, Young-Tae
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2003.07a
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    • pp.147-150
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    • 2003
  • In this paper, We fabricated a high temperature pressure sensor using SBD(silicon- direct-bonding) wafer of $Si/SiO_2$/Si-sub structure. This sensor was very sensitive because the piezoresistor is fabricated by single crystal silicon of the first layer of SDB wafer. Also, it was possible to operate the sensor at high temperature over $120^{\circ}C$ which is the temperature limitation of general silicon sensor because the piezoresistor was dielectric isolation from silicon substrate using silicon dioxide of the second layer. The sensitivity of this sensor is very high as the measured result of D2200 shows $183.6\;{\mu}V/V{\cdot}kPa$. Also, the output characteristic of linearity was very good. This sensor was available at high temperature as $300^{\circ}C$.

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Lateral Structure Transistor by Silicon Direct Bonding Technology (실리콘 직접접합 기술을 이용한 횡방향 구조 트랜지스터)

  • 이정환;서희돈
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2000.07a
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    • pp.759-762
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    • 2000
  • Present transistors which have vertical structure show increased parasitic capacitance characteristics in accordance with the increase of non-active base area and collector area, consequently have disadvantage for high speed switching performance. In this paper, a horizontal structure transistor which has minimized parasitic capacitance in virtue of SDB(Silicon Direct Bonding) wafer and oxide sidewall isolation utilizing silicon trench technology is presented. Its structural characteristics were designed by ATHENA(SUPREM4), the process simulator from SILVACO International, and its performance was proven by ATLAS, the device simulator from SILVACO International. The performance of the proposed horizontal structure transistor was certified through the VCE-lC characteristics curve, $h_{FE}$ -IC characteristics, and GP-plot.

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Silicon-Wafer Direct Bonding for Single-Crystal Silicon-on-Insulator Transducers and Circuits (단결정 SOI트랜스듀서 및 회로를 위한 Si직접접합)

  • Chung, Gwiy-Sang;Nakamura, Tetsuro
    • Journal of Sensor Science and Technology
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    • v.1 no.2
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    • pp.131-145
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    • 1992
  • This paper has been described a process technology for the fabrication of Si-on-insulator(SOI) transducers and circuits. The technology utilizes Si-wafer direct bonding(SDB) and mechanical-chemical(M-C) local polishing to create a SOI structure with a high-qualify, uniformly thin layer of single-crystal Si. The electrical and piezoresistive properties of the resultant thin SOI films have been investigated by SOI MOSFET's and cantilever beams, and confirmed comparable to those of bulk Si. Two kinds of pressure transducers using a SOI structure have been proposed. The shifts in sensitivity and offset voltage of the implemented pressure transducers using interfacial $SiO_{2}$ films as the dielectrical isolation layer of piezoresistors were less than -0.2% and +0.15%, respectively, in the temperature range from $-20^{\circ}C$ to $+350^{\circ}C$. In the case of pressure transducers using interfacial $SiO_{2}$ films as an etch-stop layer during the fabrication of thin Si membranes, the pressure sensitivity variation can be controlled to within a standard deviation of ${\pm}2.3%$ from wafer to wafer. From these results, the developed SDB process and the resultant SOI films will offer significant advantages in the fabrication of integrated microtransducers and circuits.

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Development of the High Temperature Silicon Pressure Sensor (고온용 실리콘 압력센서 개발)

  • Kim, Mi-Mook;Nam, Tae-Chul;Lee, Young-Tae
    • Journal of Sensor Science and Technology
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    • v.13 no.3
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    • pp.175-181
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    • 2004
  • A pressure sensor for high temperature was fabricated by using a SDB(Silicon-Direct-Bonding) wafer with a Si/$SiO_{2}$/ Si structure. High pressure sensitivity was shown from the sensor using a single crystal silicon of the first layer as a piezoresistive layer. It also was made feasible to use under the high temperature as of over $120^{\circ}C$, which is generally known as the critical temperature for the general silicon sensor, by isolating the piezoresistive layer dielectrically and thermally from the silicon substrate with a silicon dioxide layer of the second layer. The pressure sensor fabricated in this research showed very high sensitivity as of $183.6{\mu}V/V{\cdot}kPa$, and its characteristics also showed an excellent linearity with low hysteresis. This sensor was usable up to the high temperature range of $300^{\circ}C$.