首页> 外文会议>2015 IEEE 11th International Conference on the Properties and applications of Dielectric Materials >“Grafting to”D route to high-k and low-loss PS@BaTiO3 nanocomposites for energy storage applications
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“Grafting to”D route to high-k and low-loss PS@BaTiO3 nanocomposites for energy storage applications

机译:“嫁接”到D途径到高k低损耗PS @ BaTiO 3 纳米复合材料的储能应用

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Polystyrene@BaTiO (PS@BT) nanomposites with high dielectric constant and low dielectric loss were prepared by using the grafting to strategy. In this method, PS macromolecules with different molecular weights were first prepared by reversible addition-fragmentation chain transfer (RAFT) polymerization and then the PS macromolecules were grafted onto the surfaces of BT nanoparticles by using a so-called thiolene click reaction. Transmission electron microscopy (TEM) was used to confirm the successful fabrication of the core-shell structured PS@BT nanocomposites. Frequency dependent dielectric constant and dielectric loss tangent were measured at room temperature by a broadband dielectric spectroscopy. The room temperature electric displacement-electric field (D-E) loops were measured by a ferroelectric polarization tester and the power energy storage of the nanocomposites was calculated accordingly. Our results showed that, regardless of the molecular weight, all the nanocomposites exhibit significantly enhanced dielectric constant but low dielectric loss tangent. In addition, it is found that the molecular weight of the polymer chains play an important role in determining the dielectric loss tangent of the nanocomposites, particularly at low frequencies, whereas only resulting in marginal difference in dielectric constant and energy density of the nanocomposites. Compared with other methods such as the “grafting from” route, the unique feature of this approach is that we can control the molecular weight of the polymer shell (i.e., polymer matrix) and tune the dielectric loss by tailoring the molecular weight of the polymer shell.
机译:采用接枝策略制备了介电常数高,介电损耗低的聚苯乙烯@BaTiO(PS @ BT)纳米复合材料。在这种方法中,首先通过可逆加成-断裂链转移(RAFT)聚合反应制备具有不同分子量的PS大分子,然后通过所谓的硫烯点击反应将PS大分子接枝到BT纳米颗粒的表面。透射电子显微镜(TEM)用于确认核壳结构PS @ BT纳米复合材料的成功制备。频率相关的介电常数和介电损耗角正切是在室温下通过宽带介电谱法测量的。用铁电极化测试仪测量室温电场-电场(D-E)回路,并据此计算出纳米复合材料的能量存储。我们的结果表明,无论分子量如何,所有纳米复合材料均显示出显着增强的介电常数,但介电损耗正切值低。另外,发现聚合物链的分子量在确定纳米复合材料的介电损耗角正切中起着重要作用,特别是在低频下,而仅导致纳米复合材料的介电常数和能量密度的边际差异。与其他方法(例如“接枝”途径)相比,此方法的独特之处在于我们可以通过调整聚合物的分子量来控制聚合物外壳(即聚合物基质)的分子量并调节介电损耗贝壳。

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