首页> 外文期刊>Advanced energy materials >Mixed Ionic-Electronic Conductor of Perovskite Li_xLa_yMO_(3-δ) toward Carbon-Free Cathode for Reversible Lithium-Air Batteries
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Mixed Ionic-Electronic Conductor of Perovskite Li_xLa_yMO_(3-δ) toward Carbon-Free Cathode for Reversible Lithium-Air Batteries

机译:HEROVSKITE LI_XLA_MO_(3-δ)混合离子电子导体朝向可逆锂气电池的无碳阴极

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摘要

Mixed ionic-electronic conductors (MIECs) can play a pivotal role in achieving high energies and power densities in rechargeable batteries owing to their ability to simultaneously conduct ions and electrons. Herein, a new strategy is proposed wherein late 3d transition metals (TMs) are substituted into a perovskite Li-ion conductor to transform it into a Li-containing MIEC. First-principles calculations show that perovskite Li(x)La(y)MO(3)with late 3d TMs have a low oxygen vacancy formation energy, implying high electron carrier concentrations corresponding to high electronic conductivity. The activation barriers for Li diffusion in LixLayMO3(M = Ti, Cr, Mn, Fe, and Co) are below 0.411 eV, resulting in high Li-ion conductivity. The designed perovskites of Li(0.34)La(0.55)MnO(3-)(delta)experimentally prove to have high electronic (2.04 x 10(-3)S cm(-1)) and Li-ion (8.53 x 10(-5)S cm(-1)) conductivities, and when applied in a carbon-free cathode of a Li-air cell, they deliver superior reversibility at 0.21 mAh cm(-2)over 100 charge/discharge cycles while avoiding the degradation associated with carbonaceous materials. This strategy enables the effective design of Li-conducting MIEC and reversible Li-air batteries.
机译:混合的离子电子导体(MIEC)可以在由于它们同时进行离子和电子的能力来实现可充电电池中的高能量和功率密度的枢转作用。在此,提出了一种新的策略,其中将后期3D转变金属(TMS)被取代成钙钛矿锂离子导体以将其转化为含Li的MiEC。第一原理计算表明,具有晚3D TMS的钙钛矿Li(x)Li(Y)Mo(3)具有低氧空位形成能量,暗示对应于高电子电导率的高电子载体浓度。 Lixlaymo3(M = Ti,Cr,Mn,Fe,Fe)中Li扩散的活化屏障低于0.411eV,导致高锂离子电导率。 Li(0.34)La(0.55)MnO(3 - )(三角洲)的设计钙酸盐实验证明具有高电子(2.04×10(-3)厘米(-1))和锂离子(8.53×10( -5)Scm(-​​1))电导率,当施加在Li-空气电池的无碳阴极中时,它们在0.21mAhcm(-2)上以100℃的碳气/放电循环提供优异的可逆性,同时避免降解与碳质材料相关联。该策略使得能够有效地设计Li-Diving MieC和可逆的Li-Air电池。

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