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由导电二嵌段共聚物实现的高度柔性自组装V2O5阴极。

Highly Flexible Self-Assembled V2O5 Cathodes Enabled by Conducting Diblock Copolymers.

作者信息

An Hyosung, Mike Jared, Smith Kendall A, Swank Lisa, Lin Yen-Hao, L Pesek Stacy, Verduzco Rafael, Lutkenhaus Jodie L

机构信息

Artie McFerrin Department of Chemical Engineering, Texas A&M University, College Station, TX.

Department of Chemical and Biomolecular Engineering, Rice University, Houston, TX.

出版信息

Sci Rep. 2015 Sep 22;5:14166. doi: 10.1038/srep14166.

Abstract

Mechanically robust battery electrodes are desired for applications in wearable devices, flexible displays, and structural energy and power. In this regard, the challenge is to balance mechanical and electrochemical properties in materials that are inherently brittle. Here, we demonstrate a unique water-based self-assembly approach that incorporates a diblock copolymer bearing electron- and ion-conducting blocks, poly(3-hexylthiophene)-block-poly(ethyleneoxide) (P3HT-b-PEO), with V2O5 to form a flexible, tough, carbon-free hybrid battery cathode. V2O5 is a promising lithium intercalation material, but it remains limited by its poor conductivity and mechanical properties. Our approach leads to a unique electrode structure consisting of interlocking V2O5 layers glued together with micellar aggregates of P3HT-b-PEO, which results in robust mechanical properties, far exceeding the those obtained from conventional fluoropolymer binders. Only 5 wt % polymer is required to triple the flexibility of V2O5, and electrodes comprised of 10 wt % polymer have unusually high toughness (293 kJ/m(3)) and specific energy (530 Wh/kg), both higher than reduced graphene oxide paper electrodes. Furthermore, addition of P3HT-b-PEO enhances lithium-ion diffusion, eliminates cracking during cycling, and boosts cyclability relative to V2O5 alone. These results highlight the importance of tradeoffs between mechanical and electrochemical performance, where polymer content can be used to tune both aspects.

摘要

在可穿戴设备、柔性显示器以及结构能源和电力等应用中,需要机械性能稳健的电池电极。在这方面,挑战在于如何在本质上易碎的材料中平衡机械性能和电化学性能。在此,我们展示了一种独特的水基自组装方法,该方法将带有电子传导和离子传导嵌段的二嵌段共聚物聚(3-己基噻吩)-嵌段-聚(环氧乙烷)(P3HT-b-PEO)与V2O5结合,形成一种柔性、坚韧且无碳的混合电池阴极。V2O5是一种很有前景的锂嵌入材料,但它的导电性和机械性能较差,仍然存在局限性。我们的方法导致形成一种独特的电极结构,该结构由相互联锁的V2O5层与P3HT-b-PEO的胶束聚集体粘合在一起组成,这使得电极具有稳健的机械性能,远远超过了传统含氟聚合物粘合剂所获得的性能。只需5 wt%的聚合物就能使V2O5的柔韧性提高两倍,由10 wt%聚合物组成的电极具有异常高的韧性(293 kJ/m³)和比能量(530 Wh/kg),两者均高于还原氧化石墨烯纸电极。此外,添加P3HT-b-PEO可增强锂离子扩散,消除循环过程中的开裂现象,并相对于单独的V2O5提高循环性能。这些结果突出了在机械性能和电化学性能之间进行权衡的重要性,其中聚合物含量可用于调节这两个方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7bd9/4585753/3a5e9117c70b/srep14166-f1.jpg

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