Optimization of thermal resistance in quasi monolithic integration technology (QMIT) structure

被引:4
作者
Joodaki, M [1 ]
Kompa, G [1 ]
Hillmer, H [1 ]
机构
[1] Univ Kassel, Dept High Frequency Engn, D-34121 Kassel, Germany
来源
SEVENTEENTH ANNUAL IEEE SEMICONDUCTOR THERMAL MEASUREMENT AND MANAGEMENT SYMPOSIUM, PROCEEDINGS 2001 | 2001年
关键词
hybrid and monolithic integration technology; mu-wave and mm-wave circuits; thermal resistance;
D O I
10.1109/STHERM.2001.915136
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Static thermal analysis of the standard structure of QMIT has already been performed and effect of different factors and parameters such as thermal conductivity of epoxy, distance between active device and Si substrate (W), front side substrate metallization and heat spreader on the back side have been described [1-2]. In the first structure (or standard structure) of QMIT (Fig. 1(a)) the holes in which the active devices are placed have been created by using conventional wet etching of silicon in KOH. It is well known that by using dry etching, the holes dimensions on the front side of Si-wafer are more uniform, accurate and reproducible. There are two other possible structures, one by using the full dry etching (Fig. 1(b)) and through a combination of wet etching and dry etching (Fig. 1(c)). In this paper a 2D finite element (FE) static heat transfer simulation has been used to find the best structure among these three structures and optimise its geometry and all its physical properties to have a lower thermal resistance which makes it possible to use QMIT for high power microwave circuit applications. The results show that a combination of dry etching and wet etching gives a lower thermal resistance than the other two and with backside plating of 275 mum gold as a heat spreader, epoxy thermal conductivity of 4 W/m.K and W of 5 mum, a thermal resistance of less than 10 degreesC/W is possible.
引用
收藏
页码:12 / 17
页数:6
相关论文
共 49 条
[31]   Theoretical and experimental study of heat transfer through a vertical partitioned enclosure: Application to the optimization of the thermal resistance [J].
Sambou, V. ;
Lartigue, B. ;
Monchoux, F. ;
Adj, M. .
APPLIED THERMAL ENGINEERING, 2008, 28 (5-6) :488-498
[32]   Revealing the Effect of Chemical Bonds on Interface Thermal Resistance of Graphene Film/Cu Laminate Structure [J].
Li, Yi ;
Liu, Weiwei ;
Guo, Xiaohui ;
Lu, Xiuzhen ;
Zhang, Yan ;
Zhang, Yong .
2024 25TH INTERNATIONAL CONFERENCE ON ELECTRONIC PACKAGING TECHNOLOGY, ICEPT, 2024,
[33]   Analyses of entransy dissipation, entropy generation and entransy-dissipation-based thermal resistance on heat exchanger optimization [J].
Cheng, Xuetao ;
Zhang, Qinzhao ;
Liang, Xingang .
APPLIED THERMAL ENGINEERING, 2012, 38 :31-39
[34]   Evaluation of the Thermal Resistance of Structure with Reflective Insulation: Measurement under Non-Stationary Boundary Conditions [J].
Kalanek, Jiri ;
Steffek, Libor ;
Ostry, Milan .
ENVIBUILD 2014, 2014, 1041 :150-153
[35]   Thermal Characteristics Analysis of C-mount Sink Package Laser and Optimization of Heat Sink Structure [J].
Zhang X.-L. ;
Bo B.-X. ;
Zhang Z.-M. ;
Gu H.-X. ;
Liu L.-N. ;
Xu Y.-M. ;
Qiao Z.-L. ;
Gao X. .
Faguang Xuebao/Chinese Journal of Luminescence, 2017, 38 (07) :891-896
[36]   Thermal resistance optimization of ultra-thin vapor chamber based on data-driven model and metaheuristic algorithm [J].
Ye, Guimin ;
Sheng, Yuxuan ;
Zou, Yaping ;
Zhang, Yang ;
Tong, Wentao ;
Yu, Xiao ;
Jian, Qifei .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2024, 153
[37]   Thermal Resistance Analysis of Micro Channel Structure with 1D and Q2D Methods [J].
Chen, Shao-Wen ;
Liu, Fang-Chin ;
Kuo, Feng-Jiun ;
Chai, Min-Lun ;
Poh, Cai-Shi ;
Lee, Jin-Der ;
Wang, Jong-Rong ;
Lin, Hao-Tzu ;
Lin, Wei-Keng ;
Shih, Chunkuan .
2016 5TH INTERNATIONAL SYMPOSIUM ON NEXT-GENERATION ELECTRONICS (ISNE), 2016,
[38]   Evaluation of the drain-source voltage effect on AlGaAs/InGaAs PHEMTs thermal resistance by the structure function method [J].
Ma Lin ;
Feng Shiwei ;
Zhang Yamin ;
Deng Bing ;
Yue Yuan .
JOURNAL OF SEMICONDUCTORS, 2014, 35 (09)
[39]   Optimization of a stacked microchannel heat sink using nanofluids (AL2O3-H2O) with multiobjective optimization of thermal resistance and pressure drop [J].
Zaidan, Husain ;
Ahmad, Robiah ;
Ghazali, Normah Mohd .
2018 IEEE 5TH INTERNATIONAL CONFERENCE ON SMART INSTRUMENTATION, MEASUREMENT AND APPLICATION (ICSIMA), 2018,
[40]   Computational optimization of counter-flow double-layered microchannel heat sinks subjected to thermal resistance and pumping power [J].
Shen, Han ;
Jin, Xin ;
Zhang, Fengli ;
Xie, Gongnan ;
Sunden, Bengt ;
Yan, Hongbin .
APPLIED THERMAL ENGINEERING, 2017, 121 :180-189