TY - JOUR
T1 - Novel SnO2@ZnO hierarchical nanostructures for highly sensitive and selective NO2 gas sensing
AU - Zhang, Zhiyong
AU - Xu, Manzhang
AU - Liu, Lin
AU - Ruan, Xiongfei
AU - Yan, Junfeng
AU - Zhao, Wu
AU - Yun, Jiangni
AU - Wang, Yingnan
AU - Qin, Sujie
AU - Zhang, Ting
N1 - Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2018/3
Y1 - 2018/3
N2 - The novel brush-like (B–) SnO2@ZnO hierarchical nanostructures (HNSs) are successfully synthesized by using a simple two–step hydrothermal method. The SnO2 nanowires (NWs) grow epitaxially on the non–polarized plane of ZnO nanorods (NRs) with a six–fold symmetry. The heterogeneous nucleation–growth processes of SnO2 and ZnO are discussed in detail based on the dissolution–recrystallization mechanism, growth kinetics and Ostwald ripening. The excellent sensing performances of B–SnO2@ZnO HNSs for NO2 gas sensor are developed, including good selectivity, ultrasensitive, fast response, broad detection range and low detection limits. The detection range of the sensor is measured from 5 ppb to 10 ppm, and the detection limit of the sensor is 5 ppb at 150 °C. The response and recovery time which reach 90% of the final signal is less than 60 s, while retaining the low detection limit. The sensing mechanism is also discussed, and the unique structure of B–SnO2@ZnO is the dominating parameter for excellent sensing performances. The improved sensing performance of the HNSs also suggests the possibilities of other 1D materials combination for further sensing applications.
AB - The novel brush-like (B–) SnO2@ZnO hierarchical nanostructures (HNSs) are successfully synthesized by using a simple two–step hydrothermal method. The SnO2 nanowires (NWs) grow epitaxially on the non–polarized plane of ZnO nanorods (NRs) with a six–fold symmetry. The heterogeneous nucleation–growth processes of SnO2 and ZnO are discussed in detail based on the dissolution–recrystallization mechanism, growth kinetics and Ostwald ripening. The excellent sensing performances of B–SnO2@ZnO HNSs for NO2 gas sensor are developed, including good selectivity, ultrasensitive, fast response, broad detection range and low detection limits. The detection range of the sensor is measured from 5 ppb to 10 ppm, and the detection limit of the sensor is 5 ppb at 150 °C. The response and recovery time which reach 90% of the final signal is less than 60 s, while retaining the low detection limit. The sensing mechanism is also discussed, and the unique structure of B–SnO2@ZnO is the dominating parameter for excellent sensing performances. The improved sensing performance of the HNSs also suggests the possibilities of other 1D materials combination for further sensing applications.
KW - Growth mechanism
KW - Hierarchical nanostructures
KW - NO sensing
KW - Sensing mechanism
KW - SnO@ZnO
UR - http://www.scopus.com/inward/record.url?scp=85033408422&partnerID=8YFLogxK
U2 - 10.1016/j.snb.2017.10.190
DO - 10.1016/j.snb.2017.10.190
M3 - Article
AN - SCOPUS:85033408422
SN - 0925-4005
VL - 257
SP - 714
EP - 727
JO - Sensors and Actuators, B: Chemical
JF - Sensors and Actuators, B: Chemical
ER -