首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Through-Space Charge Modulation Overriding Substituent Effect: Rise of the Redox Potential at 3.35 V in a Lithium-Phenolate Stereoelectronic Isomer
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Through-Space Charge Modulation Overriding Substituent Effect: Rise of the Redox Potential at 3.35 V in a Lithium-Phenolate Stereoelectronic Isomer

机译:通过空间电荷调制覆盖取代基效应:锂酚酸立体电子异构体中氧化还原电位在 3.35 V 处上升

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Raising the operating potential of the organic positive electrode materials is a crucial challenge if they are to compare with lithium-ion inorganic counterparts. Although many efforts have been directed on tuning through substituent electronic effect, the chemistries than can operate above 3 V vs Li~(+)/Li~(0), and thus be air stable in the Li-reservoir form (alike the conventional inorganic Li-ion positive electrode materials) remain finger-counted. Herein, we report on a new n -type organic Li-ion positive electrode material—the tetralithium 2,5-dihydroxy-1,4-benzenediacetate—with a remarkably high redox potential of 3.35 V vs Li~(+)/Li~(0) attained notably in the solid phase. The origin of the high-energy content in this quinone derivative is found in a stereoelectronic chameleonic effect with an intramolecular conformation change and charge modulation leading to a redox potential increase of 650 mV in the solid state as compared to the same chemistry tested in solution (2.70 V vs Li~(+)/Li~(0)). The conformational dependent electroactivity rationale is supported by electrochemical and crystallography analysis, comparative infrared spectroscopy, and DFT calculation. We identify and make a linear correlation between the enolate vibrational modes and the redox potential, with general applicability for possibly other phenolate redox chemistries. Owing to these effects, this lithiated quinone is stable in ambient air and can be processed and handled alike the conventional inorganic Li-ion positive electrode materials. Whereas intrinsic to high voltage operation stability issues remain to be solved for practical implementation, our fundamental in nature and proof-of-concept study highlights the strong amplitude of through-space charge modulation effects in designing new organic Li-ion positive electrode chemistries with practical operating potential.
机译:如果要与锂离子无机材料进行比较,提高有机正极材料的工作潜力是一个关键的挑战。尽管已经有许多努力通过取代基电子效应进行调谐,但化学成分比在3 V vs Li~(+)/Li~(0)以上工作,因此在Li-Reservoir形式下具有空气稳定性(与传统的无机锂离子正极材料一样)仍然有统计学意义。本文报道了一种新的n型有机锂离子正极材料——2,5-二羟基-1,4-苯二乙酸四锂,在固相中具有3.35 V vs Li~(+)/Li~(0)的显著高氧化还原电位。该醌衍生物中高能量含量的来源是在立体电子变色龙效应中发现的,与在溶液中测试的相同化学成分相比,分子内构象变化和电荷调制导致固态氧化还原电位增加 650 mV(2.70 V vs Li~(+)/Li~(0))。电化学和晶体学分析、比较红外光谱和DFT计算支持了构象依赖的电活性原理。我们确定烯醇酸盐振动模式和氧化还原电位之间并建立线性相关性,可能适用于其他酚酸盐氧化还原化学。由于这些作用,这种锂化醌在环境空气中是稳定的,可以像传统的无机锂离子正极材料一样进行加工和处理。虽然高压工作稳定性的固有问题仍有待实际解决,但我们的基础性质和概念验证研究强调了在设计具有实际工作潜力的新型有机锂离子正极化学成分时,通过空间电荷调制效应的强振幅。

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