McNicholas Thomas P, Zhao Kang, Yang Changheng, Hernandez Sandra C, Mulchandani Ashok, Myung Nosang V, Deshusses Marc A
Department of Civil and Environmental Engineering, Box 90287, Duke University, Durham, NC 27708.
J Phys Chem C Nanomater Interfaces. 2011 Jul 21;115(28):13927-13931. doi: 10.1021/jp203662w.
Low-cost, low power consumption gas sensors that can detect or quantify various gas analytes are of increasing interest for various applications ranging from mobile health, to environmental exposure assessment and homeland security. In particular miniature gas sensors based on nanomaterials that can be manufactured in the form of sensor arrays present great potential for the development of portable monitoring devices. In this study, we demonstrate that a chemiresistive nanosensor comprised of single walled carbon nanotubes decorated with gold nanoparticles has impressive sensitivity to elemental mercury (Hg) gas concentrations, with a lower detection limit as low as 2 ppb(v). Furthermore, this nanosensor was found to regenerate, though slowly, without any additional recovery steps. Finally, the mercury vapor sensing mechanism allowed for direct investigations into the origin of Surface Enhanced Raman Scattering (SERS) in carbon nanotubes decorated with Au nanoparticles.
低成本、低功耗的气体传感器能够检测或量化各种气体分析物,在从移动健康、环境暴露评估到国土安全等各种应用中越来越受到关注。特别是基于纳米材料的微型气体传感器,能够以传感器阵列的形式制造,为便携式监测设备的发展展现出巨大潜力。在本研究中,我们证明了一种由装饰有金纳米颗粒的单壁碳纳米管组成的化学电阻纳米传感器对元素汞(Hg)气体浓度具有令人印象深刻的灵敏度,检测下限低至2 ppb(v)。此外,发现这种纳米传感器虽再生缓慢,但无需任何额外的恢复步骤。最后,汞蒸气传感机制使得能够直接研究装饰有金纳米颗粒的碳纳米管中表面增强拉曼散射(SERS)的起源。