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Nano-sized transition-metal oxides as negative-electrode materials for lithium-ion batteries

机译:纳米级过渡金属氧化物作为锂离子电池的负极材料

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Rechargeable solid-state batteries have long been considered an attractive power source for a wide variety of applications, and in particular, lithium-ion batteries are emerging as the technology of choice for portable electronics. One of the main challenges in the design of these batteries is to ensure that the electrodes maintain their integrity over many discharge-recharge cycles. Although promising electrode systems have recently been proposed, their lifespans are limited by Li-alloying agglomeration or the growth of passivation layers, which prevent the fully reversible insertion of Li ions into the negative electrodes. Here we report that electrodes made of nanoparticles of transition-metal oxides (MO, where M is Co, Ni, Cu or Fe) demonstrate electrochemical capacities of 700 mAhg~(-1), with 100% capacity retention for up to 100 cycles and high recharging rates. The mechanism of Li reactivity differs from the classical Li insertion/deinsertion or Li-alloying processes, and involves the formation and decomposition of Li_2O, accompanying the reduction and oxidation of metal nanoparticles (in the range 1-5 nanometres) respectively. We expect that the use of transition-metal nanoparticles to enhance surface electrochemical reactivity will lead to further improvements in the performance of lithium-ion batteries.
机译:长期以来,可充电固态电池一直被认为是广泛应用中的一种有吸引力的电源,尤其是锂离子电池正在成为便携式电子设备的首选技术。这些电池设计中的主要挑战之一是确保电极在许多放电-充电循环中保持其完整性。尽管最近已经提出了有希望的电极系统,但是它们的寿命受到锂合金附聚或钝化层生长的限制,这会阻止锂离子完全可逆地插入负极中。在这里,我们报道了由过渡金属氧化物(MO,其中M为Co,Ni,Cu或Fe)纳米粒子制成的电极表现出700 mAhg〜(-1)的电化学容量,并具有100%的容量保持率,最多可循环100次。高充电率。 Li反应性的机制不同于经典的Li插入/插入或Li合金化过程,并且涉及Li_2O的形成和分解,并伴随着金属纳米粒子的还原和氧化(在1-5纳米范围内)。我们期望使用过渡金属纳米颗粒增强表面电化学反应性将导致锂离子电池性能的进一步提高。

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