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层状钛氧化物和共价有机纳米片杂化空心球用于高性能钠离子电池:提高电/离子导电性和超长循环寿命

Hybridization of Layered Titanium Oxides and Covalent Organic Nanosheets into Hollow Spheres for High-Performance Sodium-Ion Batteries with Boosted Electrical/Ionic Conductivity and Ultralong Cycle Life.

机构信息

Department of Chemistry, Kyungpook National University, Daegu 41566, Republic of Korea.

Department of Chemistry, Hankuk University of Foreign Studies, Yongin 17035, Republic of Korea.

出版信息

ACS Nano. 2023 Feb 14;17(3):3019-3036. doi: 10.1021/acsnano.2c11699. Epub 2023 Jan 26.

Abstract

While development of a sodium-ion battery (SIB) cathode has been approached by various routes, research on compatible anodes for advanced SIB systems has not been sufficiently addressed. The anode materials based on titanium oxide typically show low electrical performances in SIB systems primarily due to their low electrical/ionic conductivity. Thus, in this work, layered titanium oxides were hybridized with covalent organic nanosheets (CONs), which exhibited excellent electrical conductivity, to be used as anodes in SIBs. Moreover, to enlarge the accessible areas for sodium ions, the morphology of the hybrid was formulated in the form of a hollow sphere (HS), leading to the highly enhanced ionic conductivity. This synthesis method was based on the expectation of synergetic effects since titanium oxide provides direct electrostatic sodiation sites that shield organic components and CON supports high electrical and ionic conductivity with polarizable sodiation sites. Therefore, the hybrid shows enhanced and stable electrochemical performances as an anode for up to 2600 charge/discharge cycles compared to the HS without CONs. Furthermore, the best reversible capacities obtained from the hybrid were 426.2 and 108.5 mAh/g at current densities of 100 and 6000 mA/g, which are noteworthy results for the TiO-based material.

摘要

虽然已经通过各种途径来开发钠离子电池 (SIB) 的阴极,但对于先进 SIB 系统兼容的阳极的研究还没有得到充分的解决。基于氧化钛的阳极材料在 SIB 系统中通常表现出较低的电性能,主要是因为它们的低电导率/离子导电性。因此,在这项工作中,层状氧化钛与共价有机纳米片 (CON) 进行了杂交,由于其具有优异的导电性,可用作 SIB 的阳极。此外,为了增大钠离子的可及面积,将该复合材料的形态设计成空心球 (HS),从而实现了高离子导电性。这种合成方法基于协同效应的预期,因为氧化钛提供了直接的静电钠化位点,屏蔽了有机成分,而 CON 则具有高的导电性和离子导电性,并带有可极化的钠化位点。因此,与没有 CON 的 HS 相比,该复合材料作为阳极在 2600 次充放电循环中表现出增强的和稳定的电化学性能。此外,从该复合材料获得的最佳可逆容量分别为 426.2 和 108.5 mAh/g,电流密度分别为 100 和 6000 mA/g,这对于 TiO 基材料来说是值得注意的结果。

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