• 제목/요약/키워드: au stud bump

검색결과 9건 처리시간 0.022초

Au stud 범프의 금속간화합물 성장거동에 미치는 시효처리의 영향 (Effect of Thermal Aging on Intermetallic Compound Growth Kinetics of Au Stud Bump)

  • 임기태;이장희;김병준;이기욱;이민재;주영창;박영배
    • 한국재료학회지
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    • 제18권1호
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    • pp.45-50
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    • 2008
  • Microstructural evolution and the intermetallic compound (IMC) growth kinetics in an Au stud bump were studied via isothermal aging at 120, 150, and $180^{\circ}C$ for 300hrs. The $AlAu_4$ phase was observed in an Al pad/Au stud interface, and its thickness was kept constant during the aging treatment. AuSn, $AuSn_2,\;and\;AuSn_4$ phases formed at interface between the Au stud and Sn. $AuSn_2,\;AuSn_2/AuSn_4$, and AuSn phases dominantly grew as the aging time increased at $120^{\circ}C,\;150^{\circ}C,\;and\;180^{\circ}C$, respectively, while $(Au,Cu)_6Sn_5/Cu_3Sn$ phases formed at Sn/Cu interface with a negligible growth rate. Kirkendall voids formed at $AlAu_4/Au$, Au/Au-Sn IMC, and $Cu_3Sn/Cu$ interfaces and propagated continuously as the time increased. The apparent activation energy for the overall growth of the Au-Sn IMC was estimated to be 1.04 eV.

Au 스터드 범프와 Sn-3.5Ag 솔더범프로 플립칩 본딩된 접합부의 미세조직 및 기계적 특성 (Interfacial Microstructure and Mechanical Property of Au Stud Bump Joined by Flip Chip Bonding with Sn-3.5Ag Solder)

  • 이영규;고용호;유세훈;이창우
    • Journal of Welding and Joining
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    • 제29권6호
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    • pp.65-70
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    • 2011
  • The effect of flip chip bonding parameters on formation of intermetallic compounds (IMCs) between Au stud bumps and Sn-3.5Ag solder was investigated. In this study, flip chip bonding temperature was performed at $260^{\circ}C$ and $300^{\circ}C$ with various bonding times of 5, 10, and 20 sec. AuSn, $AuSn_2$ and $AuSn_4$ IMCs were formed at the interface of joints and (Au, Cu)$_6Sn_5$ IMC was observed near Cu pad side in the joint. At bonding temperature of $260^{\circ}C$, $AuSn_4$ IMC was dominant in the joint compared to other Au-Sn IMCs as bonding time increased. At bonding temperature of $300^{\circ}C$, $AuSn_2$ IMC clusters, which were surrounded by $AuSn_4$ IMC, were observed in the solder joint due to fast diffusivity of Au to molten solder with increased bonding temperature. Bond strength of Au stud bump joined with Sn-3.5Ag solder was about 23 gf/bump and fracture mode of the joint was intergranular fracture between $AuSn_2$ and $AuSn_4$ IMCs regardless bonding conditions.

고전류 스트레싱이 금스터드 범프를 이용한 ACF 플립칩 파괴 기구에 미치는 영향 (High Electrical Current Stressing Effects on the Failure Mechanisms of Austudbumps/ACFFlip Chip Joints)

  • 김형준;권운성;백경욱
    • 한국마이크로전자및패키징학회:학술대회논문집
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    • 한국마이크로전자및패키징학회 2003년도 기술심포지움 논문집
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    • pp.195-202
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    • 2003
  • In this study, failure mechanisms of Au stud bumps/ACF flip chip joints were investigated underhigh current stressing condition. For the determination of allowable currents, I-V tests were performed on flip chip joints, and applied currents were measured as high as almost 4.2Amps $(4.42\times10^4\;Amp/cm^2)$. Degradation of flip chip joints was observed by in-situ monitoring of Au stud bumps-Al pads contact resistance. All failures, defined at infinite resistance, occurred at upward electron flow (from PCB pads to chip pads) applied bumps (UEB). However, failure did not occur at downward electron flow applied bumps (DEB). Only several $m\Omega$ contact resistance increased because of Au-Al intermetallic compound (IMC) growth. This polarity effect of Au stud bumps was different from that of solder bumps, and the mechanism was investigated by the calculation of chemical and electrical atomic flux. According to SEM and EDS results, major IMC phase was $Au_5Al_2$, and crack propagated along the interface between Au stud bump and IMC resulting in electrical failures at UEB. Therefore. failure mechanisms at Au stud bump/ACF flip chip Joint undo high current density condition are: 1) crack propagation, accompanied with Au-Al IMC growth. reduces contact area resulting in contact resistance increase; and 2) the polarity effect, depending on the direction of electrons. induces and accelerates the interfacial failure at UEBs.

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Au 스터드 범프 본딩과 Ag 페이스트 본딩으로 연결된 소자의 온도 측정 및 접촉 저항에 관한 연구 (Temperature Measurement and Contact Resistance of Au Stud Bump Bonding and Ag Paste Bonding with Thermal Heater Device)

  • 김득한;유세훈;이창우;이택영
    • 마이크로전자및패키징학회지
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    • 제17권2호
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    • pp.55-61
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    • 2010
  • 탄탈륨실리사이드 히터가 내장된 소자를 Ag 페이스트와 Au SBB(Stud Bump Bonding)를 이용하여 Au가 코팅 된 기판에 각각 접합 하였다. 전단 테스트와 전류를 흐르면서 열 성능을 측정하였다. Au 스터드 범프 본딩의 최적 플립칩 접합조건은 전단 후 파괴면 관찰하여 설정하였으며, 기판 온도를 $350^{\circ}C$, 소자 온도를 $250^{\circ}C$에서 하중을 300 g/bump 로 하여 접합하는 경우가 최적 조건이였다. 히터에 5 W 인가시 소자의 온도는 Ag 페이스트를 이용한 접합의 경우 최대 온도는 약 $50^{\circ}C$이었으며, Au 금속층을 갖고 있는 실리콘 기판에 Au 스터드 본딩으로 접합된 인 경우 약 $64^{\circ}C$를 나타내었다. 기판과의 접촉면적이 와이어본딩과 Au 스터드 범프 본딩 가 약 300배가 차이가 나는 경우 약 $14^{\circ}C$ 차이를 나타내었고, 전사모사를 통하여 접합면의 접촉저항이 중요한 이유임을 알 수 있었다.

연성인쇄회로기판 상에 Au 스터드 플립칩 범프의 초음파 접합 (Ultrasonic Bonding of Au Stud Flip Chip Bump on Flexible Printed Circuit Board)

  • 구자명;김유나;이종범;김종웅;하상수;원성호;서수정;신미선;천평우;이종진;정승부
    • 마이크로전자및패키징학회지
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    • 제14권4호
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    • pp.79-85
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    • 2007
  • 본 연구의 목적은 OSP, 전해 Au과 무전해 Ni/Au로써 표면처리를 달리한 연성회로기판 상에 Au 스터드 플립칩 범프의 초음파 접합 가능성을 연구하는 것이었다. Au 스터드 범프는 표면처리 방법에 상관없이 성공적으로 연성회로기판의 패드 상에 초음파 접합되었다 접합 강도는 접합 시간에 민감하게 영향을 받았다. 접합 시간이 길어짐에 따라 접합 강도는 증가하였으나, 2초 이상의 접합 시간에서는 이웃 범프끼리 단락되는 bridge 현상이 발생하였다. 최적 접합조건은 OSP 처리된 가판상에 0.5초간 초음파 접합하는 것이었다.

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RF 응용을 위한 플립칩 기술 (Overview on Flip Chip Technology for RF Application)

  • 이영민
    • 마이크로전자및패키징학회지
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    • 제6권4호
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    • pp.61-71
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    • 1999
  • 통신분야에서 사용주파수대역의 증가, 제품의 소형화 및 가격경쟁력등의 요구에 따라 RF 소자의 패키징 기술도 플라스틱 패키지 대신에 flip chip interconnection, MCM(multichip module)등과 같은 고밀도 실장기술이 발전해가고 있다. 따라서, 본 논문은 최근 수년간 보고된 응용사례를 중심으로 RF flip chip의 기술적인 개발방향과 장점들을 분석하였고, RF 소자 및 시스템의 개발단계에 따른 적합한 적용기술을 제시하였다. RF flip chip의 기술동향을 요약하면, 1) RF chip배선은 microstrip 대신에 CPW 구조을 선택하며, 2) wafer back-side grinding을 하지 않아서 제조공정이 단순하고 wafer 파손이 적어 제조비용을 낮출 수 있고, 3) wire bonding 패키징에 비해 전기적인 특성이 우수하고 고집적의 송수신 모듈개발에 적합하다는 것이다. 그러나, CPW 배선구조의 RF flip chip 특성에 대한 충분한 연구가 필요하며 RF flip chip의 초기 개발 단계에서 flip chip interconnection 방법으로는 Au stud bump bonding이 적합할 것으로 제안한다.

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High Integration Packaging Technology for RF Application

  • Lee, Young-Min
    • 한국마이크로전자및패키징학회:학술대회논문집
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    • 한국마이크로전자및패키징학회 1999년도 1st Korea-Japan Advanced Semiconductor Packaging Technology Seminar
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    • pp.127-154
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    • 1999
  • Interconnect - Wire bonding-> Flip chip interconnect ; At research step, Au stud bump bonding seems to be more proper .Package -Plastic package-> $Z_{0}$ controlled land grid package -Flip Chip will be used for RF ICs and CSP for digital ICs -RF MCM comprised of bare active devices and integrated passive components -Electrical design skills are much more required in RF packaging .Passive Component -discrete-> integrated -Both of size and numbers of passive components must be reduced

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High frequency measurement and characterization of ACF flip chip interconnects

  • 권운성;임명진;백경욱
    • 한국마이크로전자및패키징학회:학술대회논문집
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    • 한국마이크로전자및패키징학회 2001년도 추계 기술심포지움
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    • pp.146-150
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    • 2001
  • Microwave model and high-frequency measurement of the ACF flip-chip interconnection was investigated using a microwave network analysis. S-parameters of on-chip and substrate were separately measured in the frequency range of 200 MHz to 20 GHz using a microwave network analyzer HP8510 and cascade probe. And the cascade transmission matrix conversion was performed. The same measurements and conversion techniques were conducted on the assembled test chip and substrate at the same frequency range. Then impedance values in ACF flip-chip interconnection were extracted from cascade transmission matrix. ACF flip chip interconnection has only below 0.1nH, and very stable up to 13 GHz. Over the 13 GHz, there was significant loss because of epoxy capacitance of ACF. However, the addition of SiO$_2$filler to the ACF lowered the dielectric constant of the ACF materials resulting in an increase of resonance frequency up to 15 GHz. High frequency behavior of metal Au stud bumps was investigated. The resonance frequency of the metal stud bump interconnects is higher than that of ACF flip-chip interconnects and is not observed at the microwave frequency band. The extracted model parameters of adhesive flip chip interconnects were analyzed with the considerations of the characteristics of material and the design guideline of ACA flip chip for high frequency applications was provided.

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Flip Chip Assembly Using Anisotropic Conductive Adhesives with Enhanced Thermal Conductivity

  • Yim, Myung-Jin;Kim, Hyoung-Joon;Paik, Kyung-Wook
    • 마이크로전자및패키징학회지
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    • 제12권1호
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    • pp.9-16
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    • 2005
  • This paper presents the development of new anisotropic conductive adhesives with enhanced thermal conductivity for the wide use of adhesive flip chip technology with improved reliability under high current density condition. The continuing downscaling of structural profiles and increase in inter-connection density in flip chip packaging using ACAs has given rise to reliability problem under high current density. In detail, as the bump size is reduced, the current density through bump is also increased. This increased current density also causes new failure mechanism such as interface degradation due to inter-metallic compound formation and adhesive swelling due to high current stressing, especially in high current density interconnection, in which high junction temperature enhances such failure mechanism. Therefore, it is necessary for the ACA to become thermal transfer medium to improve the lifetime of ACA flip chip joint under high current stressing condition. We developed thermally conductive ACA of 0.63 W/m$\cdot$K thermal conductivity using the formulation incorporating $5 {\mu}m$ Ni and $0.2{\mu}m$ SiC-filled epoxy-bated binder system to achieve acceptable viscosity, curing property, and other thermo-mechanical properties such as low CTE and high modulus. The current carrying capability of ACA flip chip joints was improved up to 6.7 A by use of thermally conductive ACA compared to conventional ACA. Electrical reliability of thermally conductive ACA flip chip joint under current stressing condition was also improved showing stable electrical conductivity of flip chip joints. The high current carrying capability and improved electrical reliability of thermally conductive ACA flip chip joint under current stressing test is mainly due to the effective heat dissipation by thermally conductive adhesive around Au stud bumps/ACA/PCB pads structure.

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