Ruth Gomes, Jan Kraus, Igor Krivtsov, Vivek Wakchaure, Sibylle Riedel, Zhirong Zhao-Karger, Johannes Liessem, Christof Neumann, Martin Oschatz, Andrey Turchanin, Maximilian Fichtner, Radim Beranek, Max von Delius
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引用次数: 0
Abstract
Organic battery electrode materials represent a sustainable alternative compared to most inorganic electrodes, yet challenges persist regarding their energy density and cycling stability. In this work, a new organic electrode material is described, which is obtained via ionothermal polymerization of low-cost starting materials, melem (2,5,8-triamino-tri-s-triazine) and perylenetetracarboxylic dianhydride (PTCDA). The resulting networked polymer Melem-PDI exhibits favorable thermal and electrochemical properties, prompting investigation into its performance as a positive electrode material in rechargeable lithium and magnesium batteries. A hybrid material with carbon nanotubes (Melem-PDI-CNT) is found to exhibit-excellent cycling stability in Li-ion batteries at a current rate as high as 500 mA g-1 for 5000 cycles. While the Li-ion storage is based on a pseudocapacitive mechanism, a diffusion-controlled mechanism is observed in magnesium batteries. This work underscores that classic dyes (here: PDI) can be repurposed for energy storage, once they are integrated into suitable polymer topologies and brought into nanoscale contact with conductive materials.
与大多数无机电极相比,有机电池电极材料是一种可持续的替代品,但在能量密度和循环稳定性方面仍然存在挑战。本文描述了一种新的有机电极材料,它是通过离子热聚合得到的低成本原料,melem(2,5,8-三氨基-三-s-三嗪)和苝四羧酸二酐(PTCDA)。网状聚合物Melem-PDI表现出良好的热学和电化学性能,促使人们对其作为可充电锂电池和镁电池正极材料的性能进行研究。一种碳纳米管杂化材料(Melem-PDI-CNT)在锂离子电池中表现出优异的循环稳定性,电流速率高达500 mA g-1,循环5000次。而锂离子存储是基于赝电容机制,在镁电池中观察到扩散控制机制。这项工作强调,一旦将经典染料(PDI)整合到合适的聚合物拓扑结构中,并与导电材料进行纳米级接触,它们就可以被重新用于能量存储。
期刊介绍:
ChemSusChem
Impact Factor (2016): 7.226
Scope:
Interdisciplinary journal
Focuses on research at the interface of chemistry and sustainability
Features the best research on sustainability and energy
Areas Covered:
Chemistry
Materials Science
Chemical Engineering
Biotechnology