Robin Wessling, Hendrik Koger, Fabian Otteny, Maximilian Schmidt, Arthur Semmelmaier and Birgit Esser*,
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引用次数: 0
摘要
有机氧化还原活性聚合物具有较高的可持续性,而且其结构和电荷存储机制具有可变性,因此可作为替代能源存储设备的电极材料。氧化还原活性分子的结构设计可以显著调整材料的电化学特性。我们通过合成一种基于吩噻嗪(PT)的聚合物展示了这一策略,在这种聚合物中,通过对 PT 核进行供体置换,通常无法实现的第二次氧化(向二阳离子)被释放出来,可用于传统的碳酸盐电解质中。由此产生的交联聚合物聚(N-苯乙烯基-3,7-二甲氧基吩噻嗪)(X-PSDMPT)在锂半电池的两个氧化过程中都表现出了优异的性能,这使得利用负极的第一氧化反应和正极的第二氧化反应制造对称全有机阴离子摇椅电池成为可能。由此产生的全电池在充电速率为 1 C 时的比容量为 Qspec = 60.3 mAh gpositive-1,在超高速充电(100 C)时的容量保持率为 40%,并具有出色的循环稳定性。
Unlocking Twofold Oxidation in Phenothiazine Polymers for Application in Symmetric All-Organic Anionic Batteries
Organic redox-active polymers stand out as electrode materials for alternative energy storage devices due to their potentially higher sustainability and the variability of their structures and charge storage mechanisms. Structural design of redox-active moieties can tune the electrochemical properties of a resulting material significantly. We showcase this strategy by synthesizing a phenothiazine (PT)-based polymer, in which the commonly inaccessible second oxidation (toward the dication) is unlocked for use in conventional carbonate electrolytes by donor-substitution of the PT-core. The resulting cross-linked polymer poly(N-styryl-3,7-dimethoxy phenothiazine) (X-PSDMPT) showed excellent performance over both oxidation processes in Li half-cells, which enabled the fabrication of a symmetric all-organic anion-rocking chair battery using the first oxidation as the reaction at the negative electrode and the second oxidation at the positive electrode. The resulting full-cell delivered a specific capacity of Qspec = 60.3 mAh gpositive–1 at charging rates of 1 C and a capacity retention of 40% at ultrahigh rates (100 C) as well as excellent cycling stability.
期刊介绍:
ACS Applied Polymer Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics, and biology relevant to applications of polymers.
The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates fundamental knowledge in the areas of materials, engineering, physics, bioscience, polymer science and chemistry into important polymer applications. The journal is specifically interested in work that addresses relationships among structure, processing, morphology, chemistry, properties, and function as well as work that provide insights into mechanisms critical to the performance of the polymer for applications.