Achieving the Sensing Property of Hg0 Molecules on Black Phosphorene Nanosheets Using Anisotropy as a Response Signal

IF 5.5 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Applied Nano Materials Pub Date : 2025-04-10 DOI:10.1021/acsanm.5c01065
Zhixiu Wang*, Jing Zhang and Haiying Du*, 
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Abstract

Elemental mercury (Hg0) molecules have received great attention as a neurotoxic environmental pollutant. However, the chemical inertness of Hg0 molecules hinders discovery by gas sensors. In this work, we explore the gas sensing property of Hg0 molecules on black phosphorene nanosheets. The results show that the Hg0 molecules can form chemical adsorption on the black phosphorene nanosheet with a suitable adsorption energy of 0.85 eV. Chemical bonds can be formed between Hg0 molecules and the black phosphorene nanosheet via the orbital interaction. Although the chemical adsorption slightly changes the band gap of 0.08 eV and the work function of 0.11 eV, the adsorption of Hg0 molecules will remarkably influence the behavior of frontier orbitals. The difference of electron effective mass decreases from 9.54 to 6.82 times between armchair and zigzag directions; as a result, when applying a bias of 2.0 V, the anisotropy of current remarkably decreases from 41.34 to 7.67 times between armchair and zigzag directions, which can be an effective response signal to detect Hg0 molecules. This work not only reports a gas sensor for Hg0 molecules but also provides a physical factor of anisotropy to monitor environmental pollutants.

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利用各向异性作为响应信号实现黑色磷烯纳米片上Hg0分子的传感特性
单质汞(Hg0)分子作为一种具有神经毒性的环境污染物受到了广泛关注。然而,Hg0分子的化学惰性阻碍了气体传感器的发现。在这项工作中,我们探索了黑色磷烯纳米片上Hg0分子的气敏特性。结果表明,Hg0分子可在黑色磷烯纳米片上形成化学吸附,适宜吸附能为0.85 eV。Hg0分子与黑色磷烯纳米片之间通过轨道相互作用形成化学键。虽然化学吸附会轻微改变0.08 eV的带隙和0.11 eV的功函数,但Hg0分子的吸附会显著影响前沿轨道的行为。扶手椅与之字形方向的电子有效质量差从9.54倍减小到6.82倍;结果表明,当施加2.0 V偏压时,电流的各向异性从扶手型和之字形方向的41.34倍显著降低到7.67倍,可以作为检测Hg0分子的有效响应信号。本工作不仅报道了一种用于Hg0分子的气体传感器,而且为监测环境污染物提供了一个各向异性的物理因子。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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