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Flexible sodium-ion battery anodes using indium sulfide-based nanohybrid paper electrodes

机译:使用基于硫化铟的纳米杂化纸电极的柔性钠离子电池阳极

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Flexible nanohybrid paper electrode (termed as C-I) consisting of multi-walled carbon nanotubes (MWCNTs) and indium sulfide (In2S3) nanoplates is formed via a simple vacuum-assisted assembly and used as an anode for sodium-ion batteries (SIBs). In2S3 nanoplates which are well distributed on and bound to the MWCNTs provide a high Na storage capacity of the nanohybrid electrode as high as 410 mAh g(-1) at a specific current of 50 mA g(-1) over 100 charge/discharge cycles and similar to 97% of rate-retention capability over the specific currents of 50 mA g(-1) to 1 A g(-1) for at least 50 charge/discharge cycles. Particularly, when In2S3 in the form of nanoplates was added to MWCNTs, the electrochemical performances are considerable as compared to those of bulk In2S3 or MWCNTs film electrodes. This highlights the importance of nanohybrid approach in overcoming the intrinsic complication of In2S3, i.e., the agglomeration of In2S3 into bulk form during assembly, followed by annealing. For C-I nanohybrid electrode, capacitive contribution (similar to 95%) rather than insertion contribution (similar to 5%) is predominant during charge/discharge process. The nanohybrid paper electrode is robust and thus retains capacity even under repeated mechanical deformation (flat-bent-flat cycles), demonstrating the potential of the electrode being used for flexible and wearable energy storage.
机译:由多壁碳纳米管(MWCNT)和硫化铟(In2S3)纳米板组成的柔性纳米混合纸电极(称为C-1)是通过简单的真空辅助组件形成的,并用作钠离子电池(SIB)的阳极。在MWCNT上良好分布并与之结合的In2S3纳米板在100个充电/放电循环中以50 mA g(-1)的比电流提供了高达410 mAh g(-1)的纳米杂化电极的高Na存储容量在至少50个充电/放电循环中,在50 mA g(-1)到1 A g(-1)的特定电流下,具有约97%的速率保持能力。特别地,当将纳米板形式的In 2 S 3加入到MWCNT中时,与块状In 2 S 3或MWCNTs膜电极相比,电化学性能是显着的。这凸显了纳米杂化方法在克服In2S3固有的复杂性(即在组装过程中将In2S3团聚成块状然后进行退火)中的重要性。对于C-I纳米混合电极,在充电/放电过程中,电容贡献(约95%)而不是插入贡献(约5%)是主要的。纳米杂化纸电极坚固耐用,因此即使在反复的机械变形(平弯-平整循环)下也能保持容量,这证明了该电极用于柔性和可穿戴式能量存储的潜力。

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