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Engineering nanostructured polymer blends with controlled nanoparticle location for excellent microwave absorption: a compartmentalized approach

机译:工程纳米结构聚合物共混物,具有可控制的纳米颗粒位置,可实现出色的微波吸收:一种分区方法

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摘要

In order to obtain better materials, control over the precise location of nanoparticles is indispensable. It is shown here that ordered arrangements of nanoparticles, possessing different characteristics (electrical/ magnetic dipoles), in the blend structure can result in excellent microwave absorption. This is manifested from a high reflection loss of ca. -67 dB for the best blend structure designed here. To attenuate electromagnetic radiation, the key parameters of high electrical conductivity and large dielectric/magnetic loss are targeted here by including a conductive material multiwall carbon nanotubes, MWNTs], ferroelectric nanostructured material with associated relaxations in the GHz frequency barium titanate, BT] and lossy ferromagnetic nanoparticles nickel ferrite, NF]. In this study, bi-continuous structures were designed using 50/50 (by wt) blends of polycarbonate (PC) and polyvinylidene fluoride (PVDF). The MWNTs were modified using an electron acceptor molecule, a derivative of perylenediimide, which facilitates p-p stacking with the nanotubes and stimulates efficient charge transport in the blends. The nanoscopic materials have specific affinity towards the PVDF phase. Hence, by introducing surface-active groups, an ordered arrangement can be tailored. To accomplish this, both BT and NF were first hydroxylated followed by the introduction of amine-terminal groups on the surface. The latter facilitated nucleophilic substitution reactions with PC and resulted in their precise location. In this study, we have shown for the first time that by a compartmentalized approach, superior EM attenuation can be achieved. For instance, when the nanoparticles were localized exclusively in the PVDF phase or in both the phases, the minimum reflection losses were ca. -18 dB (for the MWNT/BT mixture) and -29 dB (for the MWNT/NF mixture), and the shielding occurred primarily through reflection. Interestingly, by adopting the compartmentalized approach wherein the lossy materials were in the PC phase and the conductive materials (MWNT) were in the PVDF phase, outstanding reflection losses of ca. -57 dB (for the BT and MWNT combination) and -67 dB (for the NF and MWNT combination) were noted and the shielding occurred primarily through absorption. Thus, the approach demonstrates that nanoscopic structuring in the blends can be achieved under macroscopic processing conditions and this strategy can further be explored to design microwave absorbers.
机译:为了获得更好的材料,控制纳米颗粒的精确位置是必不可少的。在此表明,在共混结构中具有不同特性(电/磁偶极子)的纳米粒子的有序排列可导致极好的微波吸收。这从大约1μm的高反射损耗中可以看出。 -67 dB为此处设计的最佳混合结构。为了衰减电磁辐射,此处将高导电率和大介电/磁损耗的关键参数作为目标,包括导电材料多壁碳纳米管[MWNT],铁电纳米结构材料以及在GHz频率钛酸钡[BT]上具有相关弛豫的铁磁材料铁磁性纳米粒子镍铁氧体,NF]。在这项研究中,使用聚碳酸酯(PC)和聚偏二氟乙烯(PVDF)的50/50(按重量)共混物设计了双连续结构。使用电子受体分子(per二酰亚胺的衍生物)对MWNT进行改性,这有助于与纳米管进行p-p堆叠,并促进混合物中电荷的有效传输。纳米材料对PVDF相具有特定的亲和力。因此,通过引入表面活性基团,可以定制有序的布置。为此,首先将BT和NF羟基化,然后在表面引入胺端基。后者促进了与PC的亲核取代反应并导致其精确定位。在这项研究中,我们首次展示了通过分隔方法可以实现出色的EM衰减。例如,当纳米颗粒专门定位在PVDF相或两个相中时,最小的反射损耗约为。 -18 dB(对于MWNT / BT混合物)和-29 dB(对于MWNT / NF混合物),并且屏蔽主要通过反射发生。有趣的是,通过采用有间隔的方法,其中有损耗的材料在PC相中,而导电材料(MWNT)在PVDF相中,则反射损耗显着提高了约5%。注意到-57 dB(对于BT和MWNT组合)和-67 dB(对于NF和MWNT组合),并且屏蔽主要是通过吸收产生的。因此,该方法证明了在宏观加工条件下可以实现共混物中的纳米结构化,并且可以进一步探索该策略来设计微波吸收剂。

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