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液态金属助力的通用有机碱离子电池

A Liquid-Metal-Enabled Versatile Organic Alkali-Ion Battery.

机构信息

Materials Science and Engineering Program and Department of Mechanical Engineering, The University of Texas at Austin, TX, 78712, USA.

出版信息

Adv Mater. 2019 Mar;31(11):e1806956. doi: 10.1002/adma.201806956. Epub 2019 Jan 21.

Abstract

Despite the high specific capacity and low redox potential of alkali metals, their practical application as anodes is still limited by the inherent dendrite-growth problem. The fusible sodium-potassium (Na-K) liquid metal alloy is an alternative that detours this drawback, but the fundamental understanding of charge transport in this binary electroactive alloy anode remains elusive. Here, comprehensive characterization, accompanied with density function theory (DFT) calculations, jointly expound the Na-K anode-based battery working mechanism. With the organic cathode sodium rhodizonate dibasic (SR) that has negligible selectivity toward cations, the charge carrier is screened by electrolytes due to the selective ionic pathways in the solid electrolyte interphase (SEI). Stable cycling for this Na-K/SR battery is achieved with capacity retention per cycle to be 99.88% as a sodium-ion battery (SIB) and 99.70% as a potassium-ion battery (PIB) for over 100 cycles. Benefitting from the flexibility of the liquid metal and the specially designed carbon nanofiber (CNF)/SR layer-by-layer cathode, a flexible dendrite-free alkali-ion battery is achieved with an ultrahigh areal capacity of 2.1 mAh cm . Computation-guided materials selection, characterization-supported mechanistic understanding, and self-validating battery performance collectively promise the prospect of a high-performance, dendrite-free, and versatile organic-based liquid metal battery.

摘要

尽管碱金属具有高比容量和低氧化还原电位,但由于其固有的枝晶生长问题,它们在作为阳极的实际应用中仍然受到限制。可熔钠钾(Na-K)液态金属合金是一种规避这一缺点的替代品,但对这种二元电化学活性合金阳极中电荷传输的基本理解仍难以捉摸。在这里,综合表征,伴随着密度泛函理论(DFT)计算,共同阐述了基于 Na-K 阳极的电池工作机制。使用对阳离子几乎没有选择性的有机阴极二碱式茜素酸钠(SR),由于固体电解质界面(SEI)中的选择性离子通道,电解质会屏蔽电荷载流子。具有稳定循环性能的 Na-K/SR 电池,作为钠离子电池(SIB)和钾离子电池(PIB)的容量保持率分别为 99.88%和 99.70%,循环超过 100 次。受益于液态金属的灵活性和专门设计的碳纳米纤维(CNF)/SR 层层阴极,实现了具有超高面容量的 2.1 mAh cm 的无枝晶碱离子电池。基于计算的材料选择、基于表征的机制理解和自我验证的电池性能共同保证了高性能、无枝晶和多功能有机液态金属电池的前景。

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