{"title":"具有高能量存储和电损伤自修复能力的动态交联聚乙烯网络。","authors":"Zhen Li, Yanxiu Wen, Zhe Song, Chuang Zhang, Chenhui Cui, Dongxu An, Zhishen Ge, Yilong Cheng, Qiang Zhang and Yanfeng Zhang*, ","doi":"10.1021/acsmacrolett.3c00394","DOIUrl":null,"url":null,"abstract":"<p >Dielectric polymers that exhibit high energy density <i>U</i><sub>e</sub>, low dielectric loss, and thermal resistance are ideal materials for next-generation electrical equipment. The most widely utilized approach to improving <i>U</i><sub>e</sub> involves augmenting the polarization through increasing the dielectric constant ε<sub>r</sub> or the breakdown strength <i>E</i><sub>b</sub>. However, as a conflicting parameter, the dielectric loss also increases inevitably at the same time. In addition, due to the long-term work under a strong electric field or high potential, dielectric materials often produce electrical damage (electrical tree), which is one of the main factors affecting the reliability and service life of electrical equipment. To address these problems, we herein develop dynamic cross-linked polyethylene materials (PE-MA-Epo) by polyethylene-<i>graft</i>-maleic anhydride (PE-MA) and polar epoxy monomers, which showed high ε<sub>r</sub> (>7), low dielectric loss (<0.02), high <i>U</i><sub>e</sub> (5.16 J/cm<sup>3</sup> at 425 MV/m), and outstanding discharge efficiency (97%). The performances of the materials are adequate to rival biaxially oriented polypropylene (BOPP) films. Moreover, the excellent self-healing capability of PE-MA-Epo enables the total recovery of ε<sub>r</sub> and tan δ after electrical tree healing. After two cycles of electrical breakdown healing, <i>E</i><sub>b</sub> remained at 80%, which improves the durability and reliability of dielectric polymers. Therefore, PE-MA-Epo shows great potential for applications in advanced electronic power devices.</p>","PeriodicalId":18,"journal":{"name":"ACS Macro Letters","volume":"12 10","pages":"1409–1415"},"PeriodicalIF":5.1000,"publicationDate":"2023-10-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Dynamic Cross-Linked Polyethylene Networks with High Energy Storage and Electrical Damage Self-Healability\",\"authors\":\"Zhen Li, Yanxiu Wen, Zhe Song, Chuang Zhang, Chenhui Cui, Dongxu An, Zhishen Ge, Yilong Cheng, Qiang Zhang and Yanfeng Zhang*, \",\"doi\":\"10.1021/acsmacrolett.3c00394\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Dielectric polymers that exhibit high energy density <i>U</i><sub>e</sub>, low dielectric loss, and thermal resistance are ideal materials for next-generation electrical equipment. The most widely utilized approach to improving <i>U</i><sub>e</sub> involves augmenting the polarization through increasing the dielectric constant ε<sub>r</sub> or the breakdown strength <i>E</i><sub>b</sub>. However, as a conflicting parameter, the dielectric loss also increases inevitably at the same time. In addition, due to the long-term work under a strong electric field or high potential, dielectric materials often produce electrical damage (electrical tree), which is one of the main factors affecting the reliability and service life of electrical equipment. To address these problems, we herein develop dynamic cross-linked polyethylene materials (PE-MA-Epo) by polyethylene-<i>graft</i>-maleic anhydride (PE-MA) and polar epoxy monomers, which showed high ε<sub>r</sub> (>7), low dielectric loss (<0.02), high <i>U</i><sub>e</sub> (5.16 J/cm<sup>3</sup> at 425 MV/m), and outstanding discharge efficiency (97%). The performances of the materials are adequate to rival biaxially oriented polypropylene (BOPP) films. Moreover, the excellent self-healing capability of PE-MA-Epo enables the total recovery of ε<sub>r</sub> and tan δ after electrical tree healing. After two cycles of electrical breakdown healing, <i>E</i><sub>b</sub> remained at 80%, which improves the durability and reliability of dielectric polymers. 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引用次数: 0
摘要
具有高能量密度Ue、低介电损耗和热阻的介电聚合物是下一代电气设备的理想材料。最广泛使用的改善Ue的方法包括通过增加介电常数εr或击穿强度Eb来增强极化。然而,作为一个相互冲突的参数,介电损耗也不可避免地同时增加。此外,由于电介质材料在强电场或高电位下长期工作,经常会产生电损伤(电树),这是影响电气设备可靠性和使用寿命的主要因素之一。为了解决这些问题,我们通过聚乙烯接枝马来酸酐(PE-MA)和极性环氧单体开发了动态交联聚乙烯材料(PE-MA-Epo),其表现出高εr(>7)、低介电损耗(Ue(在425MV/m下为5.16J/cm3)和优异的放电效率(97%)。这些材料的性能足以与双向拉伸聚丙烯(BOPP)薄膜相媲美。此外,PE MA Epo优异的自修复能力使电树愈合后的εr和tanδ能够完全恢复。经过两次电击穿愈合循环后,Eb保持在80%,这提高了介电聚合物的耐久性和可靠性。因此,PE MA Epo在先进的电子功率器件中显示出巨大的应用潜力。
Dynamic Cross-Linked Polyethylene Networks with High Energy Storage and Electrical Damage Self-Healability
Dielectric polymers that exhibit high energy density Ue, low dielectric loss, and thermal resistance are ideal materials for next-generation electrical equipment. The most widely utilized approach to improving Ue involves augmenting the polarization through increasing the dielectric constant εr or the breakdown strength Eb. However, as a conflicting parameter, the dielectric loss also increases inevitably at the same time. In addition, due to the long-term work under a strong electric field or high potential, dielectric materials often produce electrical damage (electrical tree), which is one of the main factors affecting the reliability and service life of electrical equipment. To address these problems, we herein develop dynamic cross-linked polyethylene materials (PE-MA-Epo) by polyethylene-graft-maleic anhydride (PE-MA) and polar epoxy monomers, which showed high εr (>7), low dielectric loss (<0.02), high Ue (5.16 J/cm3 at 425 MV/m), and outstanding discharge efficiency (97%). The performances of the materials are adequate to rival biaxially oriented polypropylene (BOPP) films. Moreover, the excellent self-healing capability of PE-MA-Epo enables the total recovery of εr and tan δ after electrical tree healing. After two cycles of electrical breakdown healing, Eb remained at 80%, which improves the durability and reliability of dielectric polymers. Therefore, PE-MA-Epo shows great potential for applications in advanced electronic power devices.
期刊介绍:
ACS Macro Letters publishes research in all areas of contemporary soft matter science in which macromolecules play a key role, including nanotechnology, self-assembly, supramolecular chemistry, biomaterials, energy generation and storage, and renewable/sustainable materials. Submissions to ACS Macro Letters should justify clearly the rapid disclosure of the key elements of the study. The scope of the journal includes high-impact research of broad interest in all areas of polymer science and engineering, including cross-disciplinary research that interfaces with polymer science.
With the launch of ACS Macro Letters, all Communications that were formerly published in Macromolecules and Biomacromolecules will be published as Letters in ACS Macro Letters.