Liu Sen, Zhang Yaqing, Gao Shang, Fei Teng, Zhang Yong, Zheng Xuejun, Zhang Tong
State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun 130012, PR China.
State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun 130012, PR China; State Key Laboratory of Transducer Technology, Shanghai 200050, PR China.
J Colloid Interface Sci. 2020 May 1;567:328-338. doi: 10.1016/j.jcis.2020.01.091. Epub 2020 Jan 25.
Here, we report an organometallic chemistry-assisted method for modification of zinc oxide (ZnO) nanoparticles by tin oxide (SnO) nanoparticles, providing a novel and efficient approach for preparation of metal oxides-based heterojunction. The SnO/ZnO heterojunctions were prepared by modification of ZnO nanoparticles with (CH)SnCl through organometallic chemistry reaction firstly, and subsequently thermal treatment in air atmosphere. The combined characterizations indicate the successful formation of ZnO/SnO heterojunctions with controllable surface oxygen vacancy concentrations by optimizing organometallic chemistry reactions. Most importantly, ZnO-Sn-0.75-based NO sensor delivers the response of 14.3 toward 0.5 ppm NO at 190 °C with response time of 100 s and recovery time of 101 s. It is also found that ZnO-Sn-0.75 sample exhibits better NO sensing performances than ZnO nanoparticles and other ZnO-Sn samples (ZnO-Sn-0.50, and ZnO-Sn-1.0). The excellent sensing performances of ZnO-Sn-0.75 are attributed to the synergistic effect n-n heterojunction and controllable surface oxygen species. The present work opens a generalized avenue for facile, cheap and mass production of transition metal oxides-based heterojunctions for various applications.
在此,我们报道了一种通过氧化锡(SnO)纳米颗粒修饰氧化锌(ZnO)纳米颗粒的有机金属化学辅助方法,为制备基于金属氧化物的异质结提供了一种新颖且高效的途径。首先通过有机金属化学反应,用(CH)SnCl修饰ZnO纳米颗粒,随后在空气气氛中进行热处理,制备出SnO/ZnO异质结。综合表征表明,通过优化有机金属化学反应,成功形成了具有可控表面氧空位浓度的ZnO/SnO异质结。最重要的是,基于ZnO-Sn-0.75的NO传感器在190°C下对0.5 ppm NO的响应为14.3,响应时间为100 s,恢复时间为101 s。还发现ZnO-Sn-0.75样品比ZnO纳米颗粒和其他ZnO-Sn样品(ZnO-Sn-0.50和ZnO-Sn-1.0)表现出更好的NO传感性能。ZnO-Sn-0.75优异的传感性能归因于n-n异质结的协同效应和可控的表面氧物种。目前的工作为各种应用中基于过渡金属氧化物的异质结的简便、廉价和大规模生产开辟了一条通用途径。