TY - JOUR
T1 - Rare-earth functioned Bi2WO6 nanofibers via electrospinning
T2 - Boosted catalytic performance and contact-free temperature monitoring on degradation process
AU - Liu, Zhewei
AU - Shen, Lifan
AU - He, Xiaoyang
AU - Pun, Edwin Yue Bun
AU - Lin, Hai
N1 - Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2021/9
Y1 - 2021/9
N2 - Bi2WO6: Er, Yb nanofibers prepared via solvothermal-electrospinning method have high-efficiency photocatalysis performance and superior temperature feedback. Combining crystal integrity and polymer processability, polyacrylonitrile composite fibers are commendable in many aspects, such as large specific surface area, excellent flexibility, controllable structure and high solar energy utilization. The boost in photocatalysis activity can be attributable to non-radiative energy transfer between Er3+ ions with bismuth tungstate and doping effect of rare earth ions in Bi2WO6, where this doping enhances separation efficiency of electron-hole pairs and promotes generation of highly oxidative species. The electrospun nanofibers also can accurately perform contact-free temperature monitoring and real-time thermal feedback on the degradation system through 2H11/2 → 4I15/2 and 4S3/2 → 4I15/2 radiation transitions of Er3+ ions. In addition, the absolute sensitivity SA and the relative sensitivity SR are as high as 0.868% K−1 and 1.548% K−1 at 313 K, respectively, which indicates nanofibers have good thermal sensitivity. This dual-function nanofiber provides new application prospects for the development of innovative multifunctional semiconductor materials to cope with the ecological and energy crisis.
AB - Bi2WO6: Er, Yb nanofibers prepared via solvothermal-electrospinning method have high-efficiency photocatalysis performance and superior temperature feedback. Combining crystal integrity and polymer processability, polyacrylonitrile composite fibers are commendable in many aspects, such as large specific surface area, excellent flexibility, controllable structure and high solar energy utilization. The boost in photocatalysis activity can be attributable to non-radiative energy transfer between Er3+ ions with bismuth tungstate and doping effect of rare earth ions in Bi2WO6, where this doping enhances separation efficiency of electron-hole pairs and promotes generation of highly oxidative species. The electrospun nanofibers also can accurately perform contact-free temperature monitoring and real-time thermal feedback on the degradation system through 2H11/2 → 4I15/2 and 4S3/2 → 4I15/2 radiation transitions of Er3+ ions. In addition, the absolute sensitivity SA and the relative sensitivity SR are as high as 0.868% K−1 and 1.548% K−1 at 313 K, respectively, which indicates nanofibers have good thermal sensitivity. This dual-function nanofiber provides new application prospects for the development of innovative multifunctional semiconductor materials to cope with the ecological and energy crisis.
KW - BiWO: Er, Yb
KW - Contact-free temperature monitoring
KW - Dual-function nanofibers
KW - Enhanced photocatalytic activity
UR - https://www.scopus.com/pages/publications/85113412979
U2 - 10.1016/j.colcom.2021.100494
DO - 10.1016/j.colcom.2021.100494
M3 - 文章
AN - SCOPUS:85113412979
SN - 2215-0382
VL - 44
JO - Colloids and Interface Science Communications
JF - Colloids and Interface Science Communications
M1 - 100494
ER -