TY - JOUR AU - Tianyu Zhu AU - Hadas Sternlicht AU - Yang Ha AU - Chen Fang AU - Dongye Liu AU - Benjamin H Savitzky AU - Xiao Zhao AU - Yanying Lu AU - Yanbao Fu AU - Colin Ophus AU - Chenhui Zhu AU - Wanli Yang AU - Andrew M Minor AU - Gao Liu AB -

Electrically conductive polymers have found increasing applications in energy conversion and storage devices. In the conventional design of conductive polymers, organic functionalities are introduced via bottom-up synthetic approaches to enhance specific properties by modification of the individual polymers. Unfortunately, the addition of functional groups leads to conflicting effects, limiting their scaled synthesis and broad applications. Here we show a conductive polymer with simple primary building blocks that can be thermally processed to develop hierarchically ordered structures (HOS) with well-defined nanocrystalline morphologies. Our approach to constructing permanent HOS in conductive polymers leads to substantial enhancement of charge transport properties and mechanical robustness, which are critical for practical lithium-ion batteries. Finally, we demonstrate that conductive polymers with HOS enable exceptional cycling performance of full cells with high-loading micron-size SiOx-based anodes, delivering areal capacities of more than 3.0 mAh cm−2 over 300 cycles and average Coulombic efficiency of >99.95%.

BT - Nature Energy DA - 05/01/2023 DO - 10.1038/s41560-022-01176-6 IS - 2 N2 -

Electrically conductive polymers have found increasing applications in energy conversion and storage devices. In the conventional design of conductive polymers, organic functionalities are introduced via bottom-up synthetic approaches to enhance specific properties by modification of the individual polymers. Unfortunately, the addition of functional groups leads to conflicting effects, limiting their scaled synthesis and broad applications. Here we show a conductive polymer with simple primary building blocks that can be thermally processed to develop hierarchically ordered structures (HOS) with well-defined nanocrystalline morphologies. Our approach to constructing permanent HOS in conductive polymers leads to substantial enhancement of charge transport properties and mechanical robustness, which are critical for practical lithium-ion batteries. Finally, we demonstrate that conductive polymers with HOS enable exceptional cycling performance of full cells with high-loading micron-size SiOx-based anodes, delivering areal capacities of more than 3.0 mAh cm−2 over 300 cycles and average Coulombic efficiency of >99.95%.

PB - Springer Science and Business Media LLC PY - 2023 SP - 129 EP - 137 T2 - Nature Energy TI - Formation of hierarchically ordered structures in conductive polymers to enhance the performances of lithium-ion batteries UR - https://doi.org/10.1038/s41560-022-01176-6 VL - 8 SN - 2058-7546 ER -