通过一原子厚的晶体进行质子运输.
S Hu1, M Lozada-Hidalgo2, F C Wang3
11] School of Physics and Astronomy, The University of Manchester, Manchester M13 9PL, UK [2] Manchester Centre for Mesoscience and Nanotechnology, The University of Manchester, Manchester M13 9PL, UK.
Nature
|December 4, 2014
概括
像石墨烯和六角化 (hBN) 等原子薄膜对热质子具有很高的透性,这使得新的基于的技术成为可能. 然而,更厚的晶体层阻断了质子运输,突出了单原子厚的材料的独特特性.
科学领域:
- 材料科学 材料科学 材料科学
- 纳米技术纳米技术
- 物理化学 物理化学
背景情况:
- 石墨烯和六角化 (hBN) 是具有先进分离技术潜力的原子薄材料.
- 完美的石墨烯单层通常在环境条件下对原子和分子无透.
- 通过如此薄的材料进行质子传输是意想不到的,需要进行调查.
研究的目的:
- 为了研究原子薄晶体膜,特别是石墨烯和hBN的质子透性.
- 为了比较单层与多层结构中的质子运输.
- 探索影响质子导电性的因素,如温度和纳米粒子装饰.
主要方法:
- 运输测量 运输测量
- 质谱法 质谱法 质谱法 质谱法
- 质子导电性和电阻性测量
- 激活能量的确定 激活能量的确定
主要成果:
- 石墨烯和hBN单层对热质子具有很高的透性,与较厚的晶体层不同.
- 单层hBN显示了最高的室温质子导电性,具有较低的激活能量.
- 石墨烯的质子电阻在较高温度 (>250°C) 上显著下降.
- 催化金属纳米粒子增强了通过这些膜的质子运输.
结论:
- 原子薄的石墨烯和hBN对质子具有很高的导电性,这挑战了以前关于它们不透性的假设.
- 这些材料由于它们的选择性质子导电性和稳定性,在以为基础的技术中具有重要的应用潜力.
- 需要对这些二维材料中的质子传输机制进行进一步的研究.
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