Su Huiyu, Li Hao, Lin Heng, Shi Xiaowen, Du Yumin, Luo Yan, Deng Hongbing
Hubei Key Laboratory of Biomass Resource Chemistry and Environmental Biotechnology, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy, School of Resource and Environmental Science, Wuhan University, Wuhan 430079, China.
Shenzhen Institute of Quality & Safety Inspection and Research, Shenzhen 518000, China.
Int J Biol Macromol. 2022 May 1;206:653-660. doi: 10.1016/j.ijbiomac.2022.02.167. Epub 2022 Feb 28.
An innovative formaldehyde sensor based on CuO/ZnO composite nanofibrous mats (C-NFMs) coated quartz crystal microbalance (QCM), which is capable of stable determination of formaldehyde gas at ambient temperatures sensitively and selectively, has been successfully fabricated. Triaxial and highly porous C-NFMs with high surface area (126.53 m g) were synthesized by electrospinning a sol-gel cellulose acetate (CA)/CuAc/ZnAc complex solution and following by calcination process. Benefiting from the unique heterojunction structure, immense pore interconnectivity and large surface area of C-NFMs, the as-developed QCM sensors exhibited an extremely low limit of detection (LOD) down to 26 ppb and a limit of quantification value equals to 87 ppb. Besides, the C-NFMs coated QCM sensors also demonstrated short response times (80s), the long-term stability during 3 weeks as well as good selectivity to formaldehyde over diverse volatile organic compounds. The sorption equilibrium in the adsorption process of QCM coated sensors was well met with the Freundlich model, which certified the heterogeneous adsorption between formaldehyde gas and C-NFMs.
一种基于涂覆有氧化铜/氧化锌复合纳米纤维垫(C-NFMs)的石英晶体微天平(QCM)的创新型甲醛传感器已成功制备,该传感器能够在环境温度下灵敏且选择性地稳定测定甲醛气体。通过静电纺丝溶胶 - 凝胶醋酸纤维素(CA)/醋酸铜/醋酸锌复合溶液并随后进行煅烧过程,合成了具有高表面积(126.53 m²/g)的三轴且高度多孔的C-NFMs。得益于C-NFMs独特的异质结结构、巨大的孔隙互连性和大表面积,所开发的QCM传感器表现出极低的检测限(LOD)低至26 ppb,定量限为87 ppb。此外,涂覆有C-NFMs的QCM传感器还具有短响应时间(80秒)、3周的长期稳定性以及对甲醛相对于多种挥发性有机化合物的良好选择性。QCM涂覆传感器吸附过程中的吸附平衡与弗伦德里希模型很好地吻合,这证明了甲醛气体与C-NFMs之间的非均相吸附。