Taylor Anthony P, Velásquez-García Luis F
Edwards Vacuum LLC, Sanborn, NY 14132, USA.
Nanotechnology. 2015 Dec 18;26(50):505301. doi: 10.1088/0957-4484/26/50/505301. Epub 2015 Nov 18.
We report low-cost conductometric gas sensors that use an ultrathin film made of graphene oxide (GO) nanoflakes as transducing element. The devices were fabricated by lift-off metallization and near-room temperature, atmospheric pressure electrospray printing using a shadow mask. The sensors are sensitive to reactive gases at room temperature without requiring any post heat treatment, harsh chemical reduction, or doping with metal nanoparticles. The sensors' response to humidity at atmospheric pressure tracks that of a commercial sensor, and is linear with changes in humidity in the 10%-60% relative humidity range while consuming <6 μW. Devices with GO layers printed by different deposition recipes yielded nearly identical response characteristics, suggesting that intrinsic properties of the film control the sensing mechanism. The gas sensors successfully detected ammonia at concentrations down to 500 ppm (absolute partial pressure of ∼5 × 10(-4) T) at ∼1 T pressure, room temperature conditions. The sensor technology can be used in a great variety of applications including air conditioning and sensing of reactive gas species in vacuum lines and abatement systems.
我们报道了一种低成本的电导式气体传感器,该传感器使用由氧化石墨烯(GO)纳米片制成的超薄膜作为传感元件。这些器件通过剥离金属化以及使用荫罩在近室温、大气压下进行电喷雾印刷来制造。这些传感器在室温下对反应性气体敏感,无需任何后热处理、苛刻的化学还原或用金属纳米颗粒掺杂。该传感器在大气压下对湿度的响应与商用传感器的响应一致,并且在10% - 60%相对湿度范围内,随着湿度变化呈线性响应,同时功耗小于6 μW。通过不同沉积方法印刷有GO层的器件产生了几乎相同的响应特性,这表明薄膜的固有特性控制着传感机制。该气体传感器在室温、约1个大气压条件下,成功检测到低至500 ppm(绝对分压约为5×10⁻⁴T)的氨气。该传感器技术可用于多种应用,包括空调以及真空管道和减排系统中反应性气体种类的传感。