TY - JOUR
T1 - Arming nanofibers with MnO2 nanosheets for fast and durable removal of ozone and particulate matter from air
AU - Zhang, Chencheng
AU - Ji, Xuzheng
AU - Bian, Ye
AU - Wang, Yong
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/4
Y1 - 2025/4
N2 - Indoor air pollution, including particulate matter (PM) and ozone (O3), is a significant threat to public health. Membrane separation is considered to be an effective strategy to control air pollutants. However, the development of multifunctional membrane for efficiently eliminating PM and O3 remains challenging. Herein, upon a simple one-step hydrothermal reaction, Cl-doped MnO2 nanosheets were assembled onto electrospun nanofibrous membranes to achieve effective air purification of PM and O3 with low resistance. The MnO2 composed of layered ultrathin nanosheets increased the particle attachment points, and enriched the pore structure and roughness of nanofibers, thereby achieving excellent filtration efficiency of PM0.3 (>95 %) and maintaining low pressure drop (40 Pa). In addition, the introduction of Cl element in PI/MnO2 (PI/MnO2–Cl) nanofibrous membranes created a large specific surface area, high redox property, and abundant water-resistant oxygen vacancy (Ov), which accelerated the desorption of intermediates and reduced the water adsorption during O3 conversion. Notably, the optimized catalytic membranes exhibited a stable O3 decomposition efficiency of 94.5 % under a relative humidity (RH) of 90 %. This work provides a potential new strategy to fabricate modified MnO2-based dual-function nanofibrous membranes for PM trapping and O3 decomposition with sustained low airflow resistance.
AB - Indoor air pollution, including particulate matter (PM) and ozone (O3), is a significant threat to public health. Membrane separation is considered to be an effective strategy to control air pollutants. However, the development of multifunctional membrane for efficiently eliminating PM and O3 remains challenging. Herein, upon a simple one-step hydrothermal reaction, Cl-doped MnO2 nanosheets were assembled onto electrospun nanofibrous membranes to achieve effective air purification of PM and O3 with low resistance. The MnO2 composed of layered ultrathin nanosheets increased the particle attachment points, and enriched the pore structure and roughness of nanofibers, thereby achieving excellent filtration efficiency of PM0.3 (>95 %) and maintaining low pressure drop (40 Pa). In addition, the introduction of Cl element in PI/MnO2 (PI/MnO2–Cl) nanofibrous membranes created a large specific surface area, high redox property, and abundant water-resistant oxygen vacancy (Ov), which accelerated the desorption of intermediates and reduced the water adsorption during O3 conversion. Notably, the optimized catalytic membranes exhibited a stable O3 decomposition efficiency of 94.5 % under a relative humidity (RH) of 90 %. This work provides a potential new strategy to fabricate modified MnO2-based dual-function nanofibrous membranes for PM trapping and O3 decomposition with sustained low airflow resistance.
KW - Air purification
KW - Catalytic membranes
KW - MnO nanosheets
KW - Ozone decomposition
KW - Particulate matter filtration
UR - http://www.scopus.com/inward/record.url?scp=85219104899&partnerID=8YFLogxK
U2 - 10.1016/j.memsci.2025.123915
DO - 10.1016/j.memsci.2025.123915
M3 - 文章
AN - SCOPUS:85219104899
SN - 0376-7388
VL - 722
JO - Journal of Membrane Science
JF - Journal of Membrane Science
M1 - 123915
ER -