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用于潜在稳定储能设备的一步法电化学合成AlO钝化扭曲磷烯纳米片

One-Step Electrochemical Synthesis of AlO -Passivated Twisted-Phosphorene Nanosheets for Potentially Stable Energy Storage Devices.

作者信息

Wu Bing, Děkanovský Lukáš, Luxa Jan, Roy Pradip Kumar, Hou Guorong, Liao Liping, Paštika Jan, Sofer Zdenek

机构信息

Department of Inorganic Chemistry, University of Chemistry and Technology Prague, Technická 5, 166 28 Prague 6, Czech Republic.

出版信息

ACS Appl Nano Mater. 2023 Mar 1;6(5):3912-3918. doi: 10.1021/acsanm.2c05589. eCollection 2023 Mar 10.

Abstract

Black phosphorus (BP), a promising 2D material for electronics, energy storage, catalysis, and sensing, has sparked a research boom. However, exfoliated thin-layered BP is unstable and can easily be degraded under environmental conditions, severely limiting its practical applications. In this context, a simple and cost-effective method has been proposed that involves electrochemically exfoliating BP and simultaneously electrochemically depositing aluminum oxide (AlO ) for passivation of the exfoliated BP. The ambient stability of the exfoliated BP is studied using a time-dependent atomic force microscope (AFM). The AlO capping layer significantly improves the environmental stability of BP compared to uncapped BP. The thermal stability of the resulting BP is evaluated using power-dependent Raman spectroscopy. The results show that the AlO -passivated BP has increased thermal stability, with only a slight shift in peak position toward higher Raman power intensity. These properties can make the material suitable for stable energy storage devices. Interestingly, the electrochemical exfoliation and passivation processes resulted in the BP with a twist angle (9.86°), which is expected to exhibit unique electronic properties similar to those of graphene with a twist angle.

摘要

黑磷(BP)作为一种在电子学、能量存储、催化和传感领域颇具潜力的二维材料,引发了研究热潮。然而,剥离的薄层黑磷不稳定,在环境条件下容易降解,这严重限制了其实际应用。在此背景下,人们提出了一种简单且经济高效的方法,即通过电化学剥离黑磷并同时电化学沉积氧化铝(AlO )来对剥离的黑磷进行钝化。使用随时间变化的原子力显微镜(AFM)研究了剥离的黑磷的环境稳定性。与未加帽的黑磷相比,AlO 封盖层显著提高了黑磷的环境稳定性。使用功率相关拉曼光谱评估了所得黑磷的热稳定性。结果表明,AlO 钝化的黑磷具有更高的热稳定性,仅峰值位置向更高拉曼功率强度略有偏移。这些特性可使该材料适用于稳定的能量存储设备。有趣的是,电化学剥离和钝化过程产生了具有扭转角(9.86°)的黑磷,预计其将表现出与具有扭转角的石墨烯类似的独特电子特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/97dc/10018416/b577973d3f1b/an2c05589_0001.jpg

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