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Beyond slurry-cast supercapacitor electrodes: PAN/MWNT heteromat-mediated ultrahigh capacitance electrode sheets

机译:除浆料流延超级电容器电极之外:PAN / MWNT异质垫介导的超高电容电极片

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摘要

Supercapacitors (SCs) have garnered considerable attention as an appealing power source for forthcoming smart energy era. An ultimate challenge facing the SCs is the acquisition of higher energy density without impairing their other electrochemical properties. Herein, we demonstrate a new class of polyacrylonitrile (PAN)/multi-walled carbon tube (MWNT) heteromat-mediated ultrahigh capacitance electrode sheets as an unusual electrode architecture strategy to address the aforementioned issue. Vanadium pentoxide (V2O5) is chosen as a model electrode material to explore the feasibility of the suggested concept. The heteromat V2O5 electrode sheets are produced through one-pot fabrication based on concurrent electrospraying (for V2O5 precursor/MWNT) and electrospinning (for PAN nanofiber) followed by calcination, leading to compact packing of V2O5 materials in intimate contact with MWNTs and PAN nanofibers. As a consequence, the heteromat V2O5 electrode sheets offer three-dimensionally bicontinuous electron (arising from MWNT networks)/ion (from spatially reticulated interstitial voids to be filled with liquid electrolytes) conduction pathways, thereby facilitating redox reaction kinetics of V2O5 materials. In addition, elimination of heavy metallic foil current collectors, in combination with the dense packing of V2O5 materials, significantly increases (electrode sheet-based) specific capacitances far beyond those accessible with conventional slurry-cast electrodes.
机译:超级电容器(SC)作为即将到来的智能能源时代的诱人动力源已引起了广泛关注。 SC面临的最终挑战是在不损害其其他电化学性能的情况下获得更高的能量密度。在本文中,我们展示了一种新型的聚丙烯腈(PAN)/多壁碳管(MWNT)异质垫介导的超高电容电极板,作为解决上述问题的不寻常电极结构策略。选择五氧化二钒(V2O5)作为模型电极材料,以探讨建议概念的可行性。通过同时进行电喷涂(对于V2O5前体/ MWNT)和电纺丝(对于PAN纳米纤维),然后煅烧,通过一锅法制造异质V2O5电极片,从而紧密包装V2O5材料,使其与MWNT和PAN纳米纤维紧密接触。因此,异质材料V2O5电极板提供了三维双连续电子(来自MWNT网络)/离子(来自空间网状的空隙,充满了液体电解质)传导途径,从而促进了V2O5材料的氧化还原反应动力学。此外,省去了重金属箔的集电器,并结合了V2O5材料的紧密堆积,大大提高了(基于电极片的)比电容,远远超过了传统的浆料浇铸电极可达到的比电容。

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