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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Water-stable O3-type layered Na transition metal oxides enabling environment friendly 'aqueous processing' of electrodes with long-term electrochemical stability
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Water-stable O3-type layered Na transition metal oxides enabling environment friendly 'aqueous processing' of electrodes with long-term electrochemical stability

机译:水稳定O3型分层NA过渡金属氧化物,可实现具有长期电化学稳定性的电极环境友好的“水性加工”

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Na(x)T(M)O(2)type [T-M: transition metal(s)] 'layered' oxides, having an initial Na-content (x) of similar to 1 (i.e., 'O3'), are important as potential cathode materials for upcoming Na-ion battery systems. However, among other problems (viz., phase transformations during Na-removal/insertion, T-M-dissolutionetc.), such oxides suffer from severe instability against hydration in a generic sense, which in turn, negatively impacts the stability, electrochemical performances and environment/health friendliness. Against this backdrop, we have designed a composition (viz., combination of T-M-/non-T-M-ions) to address the aforementioned problems, in particular, air/water-instability. Partial/complete substitution of Ti-ions for Mn-ions eliminated the presence of Mn3+(which dissolves in electrolyte) at the particle surface, suppressed the increment in impedance (as well as voltage hysteresis) during electrochemical cycling and, thus, significantly improved cyclic stability. More importantly, the air/water-stability improved drastically, such that no phase/structural change occurred even after 40 days of air-exposure and 12 h of stirring in water, unlike for predominately Mn-ion containing counterparts, which progressively evolved O ' 3 and P3 phases. In fact, water-stability enabled the usage of environment/health friendly, as well as less expensive, 'aqueous-binder' (viz., Na-alginate) and water (as solvent) for electrode preparation. The as-developed environment/health friendly 'aqueous-processed' electrode also exhibits excellent long-term cyclic stability, with capacity retention being similar to 82% after 100 cycles (similar to 60% after 500 cycles and similar to 56% after 750 cycles) at C/5, along with just similar to 4% capacity fade over the last 250 cycles investigated (viz., cycles 500-750). Such an elimination of requirements for toxic/hazardous-cum-expensive 'non-aqueous' solvents/binders for electrode preparation and the associated learning, in terms of suitable combinations of T-M-/non-T-M-ions for these oxides in the pursuit of desired structural features, are significant steps towards the development of alkali metal-ion batteries in general.
机译:na(x)t(m)o(2)型[TM:过渡金属]'层状'氧化物,其具有类似于1(即'O3')的初始Na含量(x)是重要的作为即将到来的Na离子电池系统的潜在阴极材料。然而,在其他问题(viz中,在除去/插入期间,Tm-sollyolateTc期间的相变。),这种氧化物在仿古中遭受严重不稳定性,这反过来又对稳定性,电化学性能和环境产生负面影响/健康友好。在这种背景下,我们设计了一种组成(viz,T-m-/ non-t-m-离子的组合),以解决上述问题,特别是空气/水不稳定性。用于Mn-ICE的部分/完全取代的Ti-离子在颗粒表面上消除了Mn3 +(在电解质中溶解的电解质)的存在,在电化学循环期间抑制了阻抗(以及电压滞后)的增量,因此显着改善了循环稳定。更重要的是,空气/水稳定性均急剧改善,使得即使在40天的空气暴露和水中搅拌12小时后,没有发生相变,与主要的Mn离子含有逐步发展的同伴不同。 3和p3阶段。实际上,水稳定性使得环境/健康友好的使用,以及更便宜的'水性粘合剂'(viz,Na-藻酸盐)和水(作为溶剂)的电极制备。发达的环境/健康友好的“水处理的”电极也表现出优异的长期环状稳定性,容量保持在100次循环后的82%(在500次循环后60%,750次循环后的56%类似于56% )在C / 5,同时在调查的最后250个循环中,与4%的容量逐渐消失(viz,循环500-750)。这种消除对电极制备的有毒/危险型倒数的“非水性”溶剂/粘合剂的要求和相关学习的要求,就追求这些氧化物的TM /非TM-离子的合适组合而言期望的结构特征是一般朝向碱金属离子电池开发的重要步骤。

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