首页> 外文期刊>ACS applied materials & interfaces >Metalophilic Gel Polymer Electrolyte for in Situ Tailoring Cathode/Electrolyte Interface of High-Nickel Oxide Cathodes in Quasi-Solid-State Li-Ion Batteries
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Metalophilic Gel Polymer Electrolyte for in Situ Tailoring Cathode/Electrolyte Interface of High-Nickel Oxide Cathodes in Quasi-Solid-State Li-Ion Batteries

机译:用于原位剪裁阴极/电解质界面的金属凝胶聚合物电解质在准固态锂离子电池中的高镍氧化物阴极界面

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摘要

High-Ni layered oxides are potential cathodes for high energy Li-ion batteries due to their large specific capacity advantage. However, the fast capacity fade by undesirable structural degradation in liquid electrolyte during long-term cycling is a stumbling block for the commercial application of high-Ni oxides. In this work, a functional gel polymer electrolyte, grafted with sodium alginate, is introduced to increase the stability of high-Ni oxide cathodes at the levels of both the particle and electrode. An in situ generated ion-conducting layer appears on the interface through the chemical interaction between transition-metal cations of the cathode and the metalophilic reticulum group in sodium alginate. Such a tailoring layer can not only enhance the interfacial compatibility on the cathode/electrolyte interface, reducing the interfacial resistance, but also inhibit the HF corrosion, suppressing the dissolution of transition-metal cations and harmful gradient distribution of components through the oxide cathode at the electrode level. Meanwhile, detrimental microcracks in oxide microspheres and between primary crystallites are impressively inhibited at the particle level. The high-Ni oxide cathode with the metalophilic gel polymer electrolyte shows excellent cycle stability with large initial capacity of 204.9 mA h g(-1) at a 1.0C rate and high discharge capacity retention within 300 cycles at high temperature.
机译:由于其较大的特定容量优势,高Ni分层氧化物是用于高能锂离子电池的潜在阴极。然而,长期循环期间液体电解质中不希望的结构降解的快速容量是用于高Ni氧化物的商业应用的尖端。在这项工作中,引入了与藻酸钠接枝的功能性凝胶聚合物电解质,以提高颗粒和电极水平的高氧化物阴极的稳定性。通过阴极的过渡金属阳离子和藻酸钠中的晶化网状基团之间的化学相互作用,在界面上出现原位产生的离子导电层。这种剪裁层不仅可以提高阴极/电解质界面上的界面相容性,还降低了界面抗性,而且还抑制了HF腐蚀,抑制了过渡金属阳离子的溶解,并通过氧化物阴极通过氧化物阴极的有害梯度分布电极水平。同时,氧化物微球和初级微晶之间的有害微裂纹在颗粒水平上令人印象深刻地抑制。具有融合凝胶聚合物电解质的高氧化物阴极显示出优异的循环稳定性,其初始容量为204.9mA H(-1),在高温下300次循环中的1.0℃速率和高放电容量保持。

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