College of Materials and Chemical Engineering, Collaborative Innovation Center of Environmental Pollution Control and Ecological Restoration, Zhengzhou University of Light Industry, Zhengzhou 450002, P. R. China.
Phys Chem Chem Phys. 2019 Oct 9;21(39):22039-22047. doi: 10.1039/c9cp04242c.
Double-platelet, single-platelet and spherical ZnO microcrystals were fabricated via a facile and controllable hydrothermal method. The morphology of the ZnO microcrystals and the exposure ratio of the (001) crystal surface were regulated by adjusting the pH of the solution. The ZnO microcrystals were modified with Pd nanoparticle loading by simple calcining, and the interaction of Pd nanoparticles (NPs) on the ZnO crystal surface increased its oxygen vacancy content. A micro-amount (0.05 wt%) of Pd NP-doped ZnO double-platelets (D-ZnO-0.05) enhanced the gas sensing of the sensor to 3.5 times that of pure double-platelet ZnO. The gas sensing results indicate that D-ZnO-0.05 exhibits a high response (71.2 for NO2 with 25 ppm), fast response/recovery (25 s/21 s), and superior long-term stability (remained at around 95.5% after 35 days). The enhancement in the gas sensing could be attributed to the catalysis of Pd NPs and the increase in the number of oxygen vacancies as a result of Pd loading. The band structure of D-ZnO-0.05 could be effectively tuned by introducing Pd nanoparticles, as shown in density functional theory (DFT) calculations. The Pd dopant and oxygen vacancies reduce the band gap of the ZnO(001) crystal materials, resulting in excellent sensor performance. It is believed that the D-ZnO-0.05 microcrystals could provide inspiration for crystal growth studies and high NO2 gas sensing.
双血小板、单血小板和球形 ZnO 微晶体通过一种简单可控的水热法制备。通过调节溶液的 pH 值来调节 ZnO 微晶体的形态和(001)晶面的暴露比。通过简单的煅烧将 Pd 纳米颗粒负载在 ZnO 微晶体上进行修饰,增加了 ZnO 晶体表面的氧空位含量。微量(0.05wt%)的 Pd NP 掺杂 ZnO 双血小板(D-ZnO-0.05)使传感器对 3.5 倍的 NO2 的气体感应增强,其气体感应结果表明,D-ZnO-0.05 表现出高响应(25ppm 时为 71.2),快速响应/恢复(25s/21s)和优越的长期稳定性(35 天后保持在 95.5%左右)。气体感应的增强可以归因于 Pd NPs 的催化作用和 Pd 负载导致的氧空位数量的增加。通过引入 Pd 纳米颗粒,可以有效地调整 D-ZnO-0.05 的能带结构,如密度泛函理论(DFT)计算所示。Pd 掺杂剂和氧空位降低了 ZnO(001)晶体材料的能带隙,从而获得了优异的传感器性能。相信 D-ZnO-0.05 微晶体可以为晶体生长研究和高 NO2 气体感应提供启示。