Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals, School of Chemistry and Chemical Engineering, Henan Normal University, Xinxiang, 453007, People's Republic of China.
Henan Key Laboratory for Environmental Pollution Control, Key Laboratory for Yellow River and Huai River Water Environmental Pollution and Control, Ministry of Education, School of Environment, Henan Normal University, Xinxiang, 453007, People's Republic of China.
Mikrochim Acta. 2019 May 10;186(6):342. doi: 10.1007/s00604-019-3457-y.
A versatile nanoprobe for acetone vapor was designed and fabricated. It is based on the use of gold-doped three-dimensional (3D) hierarchical porous zinc oxide microspheres (Au/ZnO HPMSs). The nanoprobe was synthesized by annealing zinc hydroxide carbonate precursor (obtained by a hydrothermal method) doped with gold nanoparticles. The resulting products possess a 3D open framework structure built of 2D porous nanosheets with a nanoporous wormhole-like shape. The microspheres doped with 0.5 mol% gold display a good selectivity towards acetone. The conductometric nanoprobe, typically operated at a voltage of 5 V, can detect sub-ppm levels of acetone, and the detection limit is as low as 0.2 ppm. The response (at a level of up to 100 ppm of acetone at 325 °C) was high (74 ± 1.9), and the response and recovery time are 6 and 3 s, respectively. This superior performance is ascribed (a) to the hierarchical porous ZnO architecture that warrants a large surface area; and (b) to the presence of gold nanoparticles that facilitate the chemisorption and dissociation of gas molecules. Graphical abstract Gold-doped 3D hierarchical porous ZnO microspheres (Au/ZnO HPMSs) architectures assembled by interconnected 2D porous nanosheets structures. The resistive sensor using these Au/ZnO HPMSs demonstrates outstanding acetone vapor sensing behaviors and 0.2 ppm detection limits.
设计并制备了一种用于丙酮蒸气的多功能纳米探针。它基于使用金掺杂的三维(3D)分级多孔氧化锌微球(Au/ZnO HPMSs)。纳米探针通过退火掺杂金纳米粒子的氢氧化锌碳酸盐前体(通过水热法获得)合成。所得产物具有由具有纳米孔虫状形状的二维多孔纳米片构建的 3D 开放框架结构。掺杂 0.5 mol%金的微球对丙酮表现出良好的选择性。电导纳米探针通常在 5 V 的电压下工作,可以检测亚 ppm 级别的丙酮,检测限低至 0.2 ppm。在 325°C 时,响应(高达 100 ppm 丙酮)高达 74 ± 1.9,响应和恢复时间分别为 6 和 3 s。这种优异的性能归因于(a)分层多孔 ZnO 结构保证了较大的表面积;和(b)金纳米粒子的存在促进了气体分子的化学吸附和解离。