In-Sun Cho (2175952)Sangwook Lee (1585906)Jun Hong Noh (1772368)Geun Kyu Choi (2406721)Hyun Suk Jung (161442)Dong Wan Kim (1796152)Kug Sun Hong (1585909)
A novel method was used to synthesize orthorhombic FeNbO<sub>4</sub> nanoparticles by a hydrothermal process followed by calcination at 600 °C, and their optical, photoelectrochemical, and photocatalytic properties were investigated. The microstructural and local structural properties were characterized using X-ray diffraction, field-emission scanning electron microscopy, transmission electron microscopy (TEM), and Raman spectroscopy. The FeNbO<sub>4</sub> particles obtained were composed of much smaller nanocrystallines, with an average size of 10−20 nm, compared to particles prepared at 1000 °C through a conventional solid-state reaction method. Moreover, the optical band gap energy of the nanoparticles was estimated to be 1.93 eV from the UV−vis diffuse reflectance, and their flat-band potential in 1 M NaOH was −0.4 V (SCE). The X-ray photoelectron spectroscopy analysis revealed that the nanoparticles had fewer surface defects, such as oxygen vacancies, than the particles prepared by the solid-state reaction method. The FeNbO<sub>4</sub> nanoparticles also exhibited a much higher photocatalytic activity for the degradation of rhodamine B dye solution under visible light irradiation (>420 nm). This higher photocatalytic activity of the FeNbO<sub>4</sub> nanoparticles was attributed to their higher optical absorption ability and smaller particle size, as well as fewer surface defects.
CUI BaiHong LinZhao Xiao-ChongLI JianbaoLI Wen-Di
In Sun ChoSangwook LeeJun Hong NohGeun Kyu ChoiHyun Suk JungDong Wan KimKug Sun Hong
Dan LiLian Wei ShanGuilin WangLi Min DongWei LiZhidong Han
Natda Wetchakun (2061130)Saranyoo Chaiwichain (2061124)Burapat Inceesungvorn (2061133)Kanlaya Pingmuang (2061127)Sukon Phanichphant (2051779)Andrew I. Minett (1418998)Jun Chen (4238)
Wen ZhaoChang Yuan ZhangYa Wei LiuXiang Ping HuangFeng Mao