Wang Ruikun, Zhang Xianlong, Guo Shaoyun
State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Sichuan Provincial Engineering Laboratory of Plastic/Rubber Complex Processing Technology, Chengdu 610065, China.
ACS Appl Mater Interfaces. 2023 Aug 30;15(34):41019-41030. doi: 10.1021/acsami.3c09622. Epub 2023 Aug 15.
Liquid high-vinyl polybutadiene (PB) possessed excellent dielectric properties, rendering them suitable candidates for adhesive films of high-frequency printed boards. However, their inherent low molecular weights resulted in chain slippage and overflow during processing, thereby diminishing the performance of the adhesive films. To address this challenge, we synthesized comb PB with long polystyrene side chains via reversible addition-fragmentation chain transfer (RAFT) polymerization, effectively immobilizing the PB backbone and restricting relative chain slippage. Controlling the length and number of "comb teeth" (styrene side chains) efficiently regulated the flowability of comb PB, achieving distinct flow states. Simultaneously, molecular dynamics simulations revealed that the elongated and inflexible polystyrene side chains of comb PB could create minuscule cavities, which impeded close packing of molecules and led to low dielectric constants (2.39/2.01, 1 MHz/10 GHz) and ultralow dielectric losses (0.0071/0.0016, 1 MHz/10 GHz). Furthermore, a series of printed circuit boards were fabricated using a comb PB adhesive film, and the signal loss was significantly reduced to 48.8% (19 GHz) in comparison with a commercial epoxy adhesive. This study demonstrated the potential of comb PB with polystyrene side chains to achieve desirable flow and dielectric properties by introducing tangles, large volume potential resistance, and microporosity compared with block structures.
液态高乙烯基聚丁二烯(PB)具有优异的介电性能,使其成为高频印刷电路板胶膜的合适候选材料。然而,其固有的低分子量导致在加工过程中链滑移和溢出,从而降低了胶膜的性能。为应对这一挑战,我们通过可逆加成-断裂链转移(RAFT)聚合反应合成了带有长聚苯乙烯侧链的梳状PB,有效地固定了PB主链并限制了相对链滑移。控制“梳齿”(苯乙烯侧链)的长度和数量可有效调节梳状PB的流动性,实现不同的流动状态。同时,分子动力学模拟表明,梳状PB的细长且刚性的聚苯乙烯侧链会形成微小的空洞,这阻碍了分子的紧密堆积,导致低介电常数(2.39/2.01,1 MHz/10 GHz)和超低介电损耗(0.0071/0.0016,1 MHz/10 GHz)。此外,使用梳状PB胶膜制备了一系列印刷电路板,与商用环氧胶相比,在19 GHz时信号损耗显著降低至48.8%。本研究表明,与嵌段结构相比,带有聚苯乙烯侧链的梳状PB通过引入缠结、大体积势垒电阻和微孔结构,具有实现理想流动和介电性能的潜力。