Murray Richard, Muriqi Arbresha, Larrigy Cathal, Russo Alida, Mengistu Mintesinot Tamiru, Iacopino Daniela, Fitzpatrick Colin, Nolan Michael, Quinn Aidan J
University College Cork, Tyndall National Institute, Cork, Dyke Parade T12 R5CP, Ireland.
Dept of Electronic & Computer Engineering, University of Limerick, Limerick V94 T9PX, Ireland.
ACS Sustain Chem Eng. 2024 Sep 27;12(41):15063-15076. doi: 10.1021/acssuschemeng.4c04488. eCollection 2024 Oct 14.
In this work, we demonstrate chemiresistive volatile organic compound (VOC) sensors prepared by drop-cast assembly of layered tin monoxide mesoflowers (SnO-MFs) on additively produced laser-induced graphene-like carbon (LIG). The SnO-MFs were synthesized below 100 °C at ambient pressure and offer a low fabrication energy alternative route to typical furnace-prepared metal-oxide materials. The additive dropcast assembly of room-temperature operating metal oxide active material allows the substitution of LIG for metal current collectors and glass for alumina, reducing the environmental footprint of the sensor. The sensors can detect methanol (150-4000 ppm) at room temperature and humidity (∼18 °C, ∼55% RH), with response and recovery times (150 ppm methanol) of ≈ 50 ± 10 s and ≈ 5 ± 0.5 s, respectively. The sensors demonstrated a limit of detection (170 ± 40 ppm) below 8 h worker safety exposure levels (200 ppm) and stable DC resistance responses Δ/ = 9 ± 2% to 710 ppm of methanol for over 21 days in ambient laboratory conditions, = 4. First-principles density functional theory simulations were used to elucidate the interactions of VOC species on the SnO surfaces. LIG-SnO hybrid sensors thus present a resource-efficient route to develop chemiresistive sensors for low-power applications, although with cross-selectivity to other alcohol species.
在这项工作中,我们展示了通过将层状一氧化锡介观花(SnO-MFs)滴铸组装在增材制造的激光诱导类石墨烯碳(LIG)上制备的化学电阻式挥发性有机化合物(VOC)传感器。SnO-MFs在常压下于100°C以下合成,为典型的炉制备金属氧化物材料提供了一种低制造能耗的替代路线。室温运行的金属氧化物活性材料的添加剂滴铸组装允许用LIG替代金属集流体,用玻璃替代氧化铝,从而减少了传感器的环境足迹。该传感器可在室温及湿度(约18°C,约55%相对湿度)下检测甲醇(150 - 4000 ppm),对150 ppm甲醇的响应和恢复时间分别约为50±10 s和约5±0.5 s。该传感器的检测限(170±40 ppm)低于8小时工人安全暴露水平(200 ppm),并且在实验室环境条件下,对710 ppm甲醇的稳定直流电阻响应Δ/ = 9±2%持续超过21天,= 4。第一性原理密度泛函理论模拟用于阐明VOC物种在SnO表面的相互作用。因此,LIG-SnO混合传感器为开发用于低功耗应用的化学电阻式传感器提供了一条资源高效的途径,尽管对其他醇类物质存在交叉选择性。