La^(3+)-Doped ZnWO_(4) nanorods were prepared via a hydrothermal method for the photocatalytic NO removal under simulated solar light irradiation.It was revealed by photocatalytic experiments that the 0.6%La^(3+)-dope...La^(3+)-Doped ZnWO_(4) nanorods were prepared via a hydrothermal method for the photocatalytic NO removal under simulated solar light irradiation.It was revealed by photocatalytic experiments that the 0.6%La^(3+)-doped ZnWO_(4) nanorods exhibited the best photocatalytic activities for NO removal(46%)in comparison with other samples.The enhanced photocatalytic activity could be attributed to La^(3+)ion doping,which creates an abundance of oxygen vacancies(OVs)as confirmed by the electron paramagnetic response(EPR).The optical response ability was promoted by La^(3+)ion doping and the construction of OVs according to the results of UV-vis spectra.Density functional theory(DFT)calculations were further conducted,revealing that the introduction of La^(3+)ions and high concentrations of OVs can narrow the band gap of ZnWO_(4).The e-and·O_(2)-radical species are found to play critical roles in the oxidative removal process via the scavenger experiments and the DMPO-ESR measurements.Furthermore,the possible photocatalytic reaction mechanism was also proposed based on the products formed during the photocatalytic reaction,which were traced by in situ Fourier transform infrared spectroscopy(in situ FTIR).Overall,the findings in this work can provide inspiration for the design and synthesis of rare earth ion-doped and OV-rich photocatalysts with highly efficient photocatalytic NO removal.展开更多
基金supported financially by the Youth Talent Lifting Project of Jilin Province(181907)the National Natural Science Foundation of China(31971616)+2 种基金the Major Science Technology Tender Special of Jilin Province(20170203001SF)the Science and Technology Innovation Development Plan of Jilin City(201830811)the Natural Science Foundation Project of Jilin Provincial Science and Technology Development Plan(20190201277JC).
文摘La^(3+)-Doped ZnWO_(4) nanorods were prepared via a hydrothermal method for the photocatalytic NO removal under simulated solar light irradiation.It was revealed by photocatalytic experiments that the 0.6%La^(3+)-doped ZnWO_(4) nanorods exhibited the best photocatalytic activities for NO removal(46%)in comparison with other samples.The enhanced photocatalytic activity could be attributed to La^(3+)ion doping,which creates an abundance of oxygen vacancies(OVs)as confirmed by the electron paramagnetic response(EPR).The optical response ability was promoted by La^(3+)ion doping and the construction of OVs according to the results of UV-vis spectra.Density functional theory(DFT)calculations were further conducted,revealing that the introduction of La^(3+)ions and high concentrations of OVs can narrow the band gap of ZnWO_(4).The e-and·O_(2)-radical species are found to play critical roles in the oxidative removal process via the scavenger experiments and the DMPO-ESR measurements.Furthermore,the possible photocatalytic reaction mechanism was also proposed based on the products formed during the photocatalytic reaction,which were traced by in situ Fourier transform infrared spectroscopy(in situ FTIR).Overall,the findings in this work can provide inspiration for the design and synthesis of rare earth ion-doped and OV-rich photocatalysts with highly efficient photocatalytic NO removal.