Low-transmission-loss modified cyanate ester materials for high-frequency applications

被引:9
作者
Fujimoto, D [1 ]
Mizuno, Y [1 ]
Takano, N [1 ]
Sase, S [1 ]
Negishi, H [1 ]
Sugimura, T [1 ]
机构
[1] Hitachi Chem Co Ltd, Ctr Res & Dev, Shimodate, Ibaraki 3088521, Japan
来源
POLYTRONIC 2002: 2ND INTERNATIONAL IEEE CONFERENCE ON POLYMERS AND ADHESIVES IN MICROELECTRONICS AND PHOTONICS, CONFERENCE PROCEEDINGS | 2002年
关键词
D O I
10.1109/POLYTR.2002.1020193
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
Cyanate esters cure through cyclotrimerization of reactive cyanate functional groups into resins with three-dimensional and densely cross-linked structures. i.e. triazine resins, which have low dielectric constants and high glass transition temperatures. Aryl cyanate esters had been of great interest as materials for low dielectric-constant circuit boards; however, their dielectric properties could not satisfy the demands for high-speed communication. We have found that novel modified cyanate ester resins will show much lower dielectric constant/loss and better compatibility with high molecular weight thermoplastic polymers. Judging from the structure/property relationships obtained through the analytical results of their chemical structures and the studies on their visco-elastic properties, we have concluded that the above characteristics were due to the unique resin structures. We developed semi-intermolecular-penetrating network (semi-IPN) materials by combining modified cyanate ester resins with thermoplastic polymers which provide low dissipation factor in GHz frequency range. Circuit boards with glass cloths and these materials demonstrated low transmission losses in the frequency range up to 30 GHz. These excellent microwave properties will ensure an advantage to the novel modified cyanate ester resins as materials for circuit boards in high-speed communications technology.
引用
收藏
页码:114 / 119
页数:6
相关论文
共 8 条
[1]  
FUJIMOTO D, 1999, P NETW POL S JAP, P97
[2]  
HAMILTON I, 1994, CHEM TECHNOLOGY CYAN
[3]  
Mizuno Y., 1999, 76 SPRING ANN M, P368
[4]  
SASA S, 2001, J NETWORK POLYM JAPA, V22, P150
[5]  
SASE S, 2001, J NETWORK POLYM JAPA, V22, P192
[6]  
SASE S, 1995, 69 SPRING ANN M, P702
[7]  
SASE S, 2000, P NETWORK POLYM S JA, P33
[8]  
STINSON SC, 1994, CHEM NEWS SEP, P30