Department of Chemical and Biomolecular Engineering, University of California, Berkeley , Berkeley, California 94720, United States.
Berkeley Sensor & Actuator Center, University of California, Berkeley , Berkeley, California 94720, United States.
ACS Appl Mater Interfaces. 2017 Jan 25;9(3):2634-2641. doi: 10.1021/acsami.6b12677. Epub 2017 Jan 13.
A simple and versatile strategy is presented for the localized on-chip synthesis of an ordered metal oxide hollow sphere array directly on a low power microheater platform to form a closely integrated miniaturized gas sensor. Selective microheater surface modification through fluorinated monolayer self-assembly and its subsequent microheater-induced thermal decomposition enables the position-controlled deposition of an ordered two-dimensional colloidal sphere array, which serves as a sacrificial template for metal oxide growth via homogeneous chemical precipitation; this strategy ensures control in both the morphology and placement of the sensing material on only the active heated area of the microheater platform, providing a major advantage over other methods of presynthesized nanomaterial integration via suspension coating or printing. A fabricated tin oxide hollow sphere-based sensor shows high sensitivity (6.5 ppb detection limit) and selectivity toward formaldehyde, and extremely fast response (1.8 s) and recovery (5.4 s) times. This flexible and scalable method can be used to fabricate high performance miniaturized gas sensors with a variety of hollow nanostructured metal oxides for a range of applications, including combining multiple metal oxides for superior sensitivity and tunable selectivity.
本文提出了一种简单而通用的策略,用于在低功率微加热器平台上直接在局部区域合成有序金属氧化物空心球阵列,以形成紧密集成的小型化气体传感器。通过氟单层自组装对微加热器表面进行选择性修饰,随后进行微加热器诱导的热分解,可实现有序二维胶体球阵列的位置控制沉积,该阵列可用作通过均相化学沉淀生长金属氧化物的牺牲模板;这种策略确保了仅在微加热器平台的有源加热区域上对传感材料的形态和位置进行控制,这与通过悬浮涂层或印刷进行预合成纳米材料集成的其他方法相比具有很大的优势。基于氧化锡空心球的传感器具有很高的灵敏度(6.5 ppb 的检测限)和对甲醛的选择性,并且响应(1.8 s)和恢复(5.4 s)时间极快。这种灵活且可扩展的方法可用于制造具有各种空心纳米结构金属氧化物的高性能小型化气体传感器,适用于多种应用,包括结合多种金属氧化物以获得更高的灵敏度和可调选择性。