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首页> 外文期刊>Iet Nanodielectrics >Charge trapped mechanism for semi-crystalline polymer electrets: quasi-dipole model
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Charge trapped mechanism for semi-crystalline polymer electrets: quasi-dipole model

机译:用于半晶高聚合物电器的捕获机制:准偶极模型

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摘要

Polymer electrets are increasingly getting application in a very wide range. However, its charge trapped mechanism is still poorly understood. It is always challenging how to improve its charge trapped ability and to enhance its performance stability. In this study, a charge trapped mechanism, quasi-dipole model, is proposed for semi-crystalline polymer electrets. Every grain of crystallite is viewed as a dipole based on the polarisation effect between crystalline and amorphous region when charged. The energy level of the charge trap has a dependence on the crystallite structure. The more regular the crystallite grain structure the better charge stability is. The melt-blown polypropylene (MBPP) electret fabrics with α or mesomorphic crystallite are used as the model material to verify the rationality of the mechanism. The experiment results from thermally stimulating discharge and X-ray diffraction proved that the charge-trapped stability could be improved by means of transformation from meso-crystalline to α crystalline structure. The MBPP fabric containing α-crystallite shows much better charge trapped performance than one containing mesomorphic-crystallite because of more regular structure in α crystallite. The findings not only present new insight into charge-trapped phenomena in polymer electrets, but also provide innovation for the processing technology of polymer electret materials.
机译:聚合物电器越来越多地在非常广泛的范围内施用。然而,它的电荷陷阱机制仍然很差。它始终挑战如何提高其收费陷阱能力,并提高其性能稳定性。在该研究中,提出了一种用于半结晶聚合物elects的电荷捕获机构准偶极模型。基于带电时,基于结晶和无定形区域之间的偏振效应,将每种微晶晶体视为偶极物。电荷疏水阀的能量水平具有对微晶结构的依赖性。常规晶体晶粒结构越多,充电稳定性更好。熔喷聚丙烯(MBPP)驻极体织物用α或膈晶体用作模型材料,以验证机构的合理性。通过热刺激的放电和X射线衍射产生的实验结果证明,通过从中俄结晶至α结晶结构的转化可以改善电荷捕获的稳定性。含有α-微晶的MBPP织物显示出比α微晶中的更规则结构更好地捕获的性能比含有Mesomorphic-Crystallite的更好的捕获性能。该发现不仅在聚合物电器中呈现了对电荷捕获的现象的新洞察力,而且还为聚合物驻极材料的加工技术提供了创新。

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