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用于高性能锂氧电池的正交通道、低曲折度碳纳米管平台

Orthogonal-Channel, Low-Tortuosity Carbon Nanotube Platforms for High-Performance Li-O Batteries.

作者信息

Zhao Bo, Ye Ziming, Kong Xiaobing, Han Lei, Xia Zhiyuan, Chen Kun, Wang Qi, Li Meng, Shang Yuanyuan, Cao Anyuan

机构信息

School of Materials Science and Engineering, Peking University, Beijing 100871, China.

School of Physics and Microelectronics, Zhengzhou University, Zhengzhou 450001, China.

出版信息

ACS Nano. 2023 Sep 26;17(18):18382-18391. doi: 10.1021/acsnano.3c05782. Epub 2023 Sep 6.

Abstract

Aerogels and foams are promising electrode materials owing to their lightweight, high porosity, and large surface area for creating abundant active/catalytic sites. Tailoring their porous structure is essential toward maximum electrode performance yet remains challenging in the field. Here, by modifying a pristine carbon nanotube (CNT) sponge with random internal distribution, we present a CNT platform consisting of regular, orthogonally intercrossed through-channels centered at a suitable lateral size (around 5 μm), with low tortuosity and enhanced electrochemical kinetics under predefined compression. Our CNT platforms, grafted by bifunctional transitional metal hydroxide catalyst, overcome considerable challenges of both long cycle life and high rates simultaneously, serving as Li-O cathodes and achieving lifetime of 500 cycles at 0.5 mA cm (275 cycles even at 1 mA cm) and also displaying high areal capacity (27 mA h cm), which are superior to most of the recently reported porous electrodes based on various materials. The mechanism involving fast triple-phase transport and reversible discharge product deposition, enabled by catalyst-loaded orthogonal channels, has been disclosed. Such structure-tailored robust CNT platforms could find many applications in electrochemical catalysis and energy storage systems.

摘要

气凝胶和泡沫材料因其重量轻、孔隙率高以及具有大表面积从而能够产生丰富的活性/催化位点,是很有前景的电极材料。调整它们的多孔结构对于实现最大电极性能至关重要,但在该领域仍然具有挑战性。在此,通过对具有随机内部分布的原始碳纳米管(CNT)海绵进行改性,我们展示了一种CNT平台,该平台由规则的、正交交叉的贯穿通道组成,这些通道以合适的横向尺寸(约5μm)为中心,具有低曲折度,并在预定义压缩下增强了电化学动力学。我们的CNT平台接枝了双功能过渡金属氢氧化物催化剂,同时克服了长循环寿命和高倍率这两个相当大的挑战,用作锂氧阴极时在0.5 mA cm下实现了500次循环的寿命(即使在1 mA cm下也有275次循环),并且还显示出高面积容量(27 mA h cm),优于最近报道的基于各种材料的大多数多孔电极。由负载催化剂的正交通道实现的涉及快速三相传输和可逆放电产物沉积的机制已被揭示。这种结构定制的坚固CNT平台在电化学催化和储能系统中可以找到许多应用。

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