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超坚韧氢键桥连磷烯薄膜

Ultratough Hydrogen-Bond-Bridged Phosphorene Films.

作者信息

Liu Zhifang, Wang Huaipeng, Cao Huaqiang, Xie Dan, Li Chun, Yang Haijun, Yao Wenqing, Cheetham Anthony K

机构信息

Department of Chemistry, Tsinghua University, Beijing, 100084, P. R. China.

School of Integrated Circuits, Tsinghua University, Beijing, 100084, P. R. China.

出版信息

Adv Mater. 2022 Sep;34(39):e2203332. doi: 10.1002/adma.202203332. Epub 2022 Aug 26.

Abstract

The rapid development of flexible electronic devices, especially based on 2D materials, has triggered the demand for high-strength materials. Mono- or few-layer phosphorene with excellent electronic properties has attracted extensive attention. However, phosphorene is affected by its low Young's modulus when applied to flexible electronic devices. Here, a strategy via ion intercalation to significantly improve the mechanical properties of black phosphorus to generate hydrogen-bond-bridged phosphorene films with Young's modulus as high as 316 GPa is reported. This value is several times larger than the theoretical values of 166 GPa in the zigzag direction, 44 GPa in the armchair direction, and the averaged Young's modulus among all directions of 94 GPa. The impact of intercalation on mechanical properties is also explored. Experimental nanoindentation results obtained by atomic force microscopy indicate that the relationship between the ratio of intercalated ions to phosphorus atoms and the corresponding Young's modulus satisfies the formula . Furthermore, a flexible NO gas sensor device based on this ultratough material presents excellent performance, even after 10 000 bending cycles. The results provide new insight into the potential for practical applications of black phosphorus devices.

摘要

柔性电子器件的快速发展,尤其是基于二维材料的器件,引发了对高强度材料的需求。具有优异电子性能的单层或少数层磷烯引起了广泛关注。然而,磷烯应用于柔性电子器件时会受到其低杨氏模量的影响。在此,报道了一种通过离子插层显著改善黑磷机械性能的策略,以生成杨氏模量高达316 GPa的氢键桥连磷烯薄膜。该值比之字形方向的理论值166 GPa、扶手椅方向的44 GPa以及所有方向平均杨氏模量94 GPa的几倍还要大。还探究了插层对机械性能的影响。通过原子力显微镜获得的实验纳米压痕结果表明,插层离子与磷原子的比例与相应杨氏模量之间的关系满足公式 。此外,基于这种超韧性材料的柔性NO气体传感器器件即使在10000次弯曲循环后仍表现出优异性能。这些结果为黑磷器件的实际应用潜力提供了新的见解。

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