Yajun Zou
Xi'an Jiaotong University
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Publication
Featured researches published by Yajun Zou.
ACS Applied Materials & Interfaces | 2017
Dandan Ma; Jian-Wen Shi; Yajun Zou; Zhaoyang Fan; Xin Ji; Chunming Niu
A novel CdS/ZnO heterojunction constructed of zero-dimensional (0D) CdS quantum dots (QDs) and two-dimensional (2D) ZnO nanosheets (NSs) was rationally designed for the first time. The 2D ZnO NSs were assembled into ZnO microflowers (MFs) via an ultrasonic-assisted hydrothermal procedure (100 °C, 12 h) in the presence of a NaOH solution (0.06 M), and CdS QDs were deposited on both sides of every ZnO NS in situ by using the successive ionic-layer absorption and reaction method. It was found that the ultrasonic treatment played an important role in the generation of ZnO NSs, while NaOH was responsible to the assembly of a flower-like structure. The obtained CdS/ZnO 0D/2D heterostructures exhibited remarkably enhanced photocatalytic activity for hydrogen evolution from water splitting in comparison with other CdS/ZnO heterostructures with different dimensional combinations such as 2D/2D, 0D/three-dimensional (3D), and 3D/0D. Among them, CdS/ZnO-12 (12 deposition cycles of CdS QDs) exhibited the highest hydrogen evolution rate of 22.12 mmol/g/h, which was 13 and 138 times higher than those of single CdS (1.68 mmol/g/h) and ZnO (0.16 mmol/g/h), respectively. The enhanced photocatalytic activity can be attributed to several positive factors, such as the formation of a Z-scheme photocatalytic system, the tiny size effect of 0D CdS QDs and 2D ZnO NSs, and the intimate contact between CdS QDs and ZnO NSs. The formation of a Z-scheme photocatalytic system remarkably promoted the separation and migration of photogenerated electron-hole pairs. The tiny size effect effectively decreased the recombination probability of electrons and holes. The intimate contact between the two semiconductors efficiently reduced the migration resistance of photogenerated carriers. Furthermore, CdS/ZnO-12 also presented excellent stability for photocatalytic hydrogen evolution without any decay within five cycles in 25 h.
Chemcatchem | 2017
Yajun Zou; Jian-Wen Shi; Dandan Ma; Zhaoyang Fan; Chunming Niu; Lianzhou Wang
The Z‐scheme photocatalytic system for water splitting based on semiconductors has exhibited great potential for H2 fuel production from renewable resources. In this work, we constructed g‐C3N4/Au/C‐TiO2 hollow spheres as an all‐solid‐state Z‐scheme photocatalytic system with Au nanoparticles as the electron mediator. The as‐synthesized g‐C3N4/Au/C‐TiO2 photocatalyst showed a remarkably enhanced photocatalytic H2 evolution rate under visible‐light irradiation (λ>420 nm), which was 86 and 42 times higher than those of pure C‐TiO2 and g‐C3N4, respectively. The enhancement of photocatalytic performance can be mainly attributed to the intentionally designed Z‐scheme system, which not only promoted the efficient transfer and separation of photogenerated electron–hole pairs, but also retained the strong redox ability of the charge carriers. In addition, the Z‐scheme system also achieved high visible‐light absorption and utilization owing to the surface plasmon resonance (SPR) effect of Au nanoparticles and hollow structures of C‐TiO2. All the factors synergistically promote the photocatalytic activity of the g‐C3N4/Au/C‐TiO2 hollow nanospheres, providing a promising method for the rational design of highly efficient visible‐light‐driven photocatalysts.
Chemsuschem | 2018
Yajun Zou; D. Jian‐Wen Shi; Dandan Ma; Zhaoyang Fan; Linhao Cheng; Diankun Sun; Zeyan Wang; Chunming Niu
Two-dimensional/two-dimensional (2D/2D) stacking heterostructures are highly desirable in fabricating efficient photocatalysts because face-to-face contact can provide a maximized interfacial region between the two semiconductors; this largely facilitates the migration of charge carriers. Herein, a WS2 /graphitic carbon nitride (CN) 2D/2D nanosheet heterostructure decorated with CdS quantum dots (QDs) has been designed, for the first time. Optimized CdS/WS2 /CN without another cocatalyst exhibits a significantly enhanced photocatalytic H2 evolution rate of 1174.5 μmol h-1 g-1 under visible-light irradiation (λ>420 nm), which is nearly 67 times higher than that of the pure CN nanosheets. The improved photocatalytic activity can be primarily attributed to the highly efficient charge-transfer pathways built among the three components, which effectively accelerate the separation and transfer of photogenerated electrons and holes, and thus, inhibit their recombination. Moreover, the extended light-absorption range also contributes to excellent photocatalytic efficiency. In addition, the CdS/WS2 /CN photocatalyst shows excellent stability and reusability without apparent decay in the photocatalytic H2 evolution within 4 cycles in 20 h. It is believed that this work may shed light on specifically designed 2D/2D nanosheet heterostructures for more efficient visible-light-driven photocatalysts.
Catalysis Science & Technology | 2018
Yajun Zou; Jian-Wen Shi; Dandan Ma; Zhaoyang Fan; Chi He; Linhao Cheng; Diankun Sun; Jun Li; Zeyan Wang; Chunming Niu
Developing photocatalysts with efficient spatial charge separation and transfer as well as a high light-harvesting ability remains a key challenge. Here, we report a facile in situ process to decorate ultrathin g-C3N4 nanosheets (NSs) with a co-catalyst, Cu2MoS4, for photocatalytic water splitting. The as-obtained Cu2MoS4/g-C3N4 exhibits a superior photocatalytic H2 evolution rate of 2170.5 μmol h−1 g−1 under visible light irradiation, which is nearly 677 and 34 times higher than that of bulk g-C3N4 and g-C3N4 NSs, respectively, and far exceeds that of most g-C3N4 catalysts modified with other sulphide co-catalysts reported in the literature, demonstrating that Cu2MoS4 can serve as a promising non-noble metal co-catalyst to couple with g-C3N4 for highly efficient photocatalysts. Structural characterization confirms the well-defined morphology of Cu2MoS4/g-C3N4 in which Cu2MoS4 hollow spheres are uniformly attached on the ultrathin g-C3N4 NSs with numerous micropores and vacancies. The optical properties indicate that Cu2MoS4/g-C3N4 possesses a superb visible light absorption ability. The photoluminescence spectra, photocurrent response, and electrochemical impedance spectra combine to prove the highly efficient separation and migration of photogenerated electrons and holes. All these factors synergistically enhance the photocatalytic activity of Cu2MoS4/g-C3N4 for photocatalytic water splitting, providing new insights into the rational design of high-performance visible light-driven photocatalysts based on earth-abundant elements.
IOP Conference Series: Materials Science and Engineering | 2017
Jian-Wen Shi; Yajun Zou; Dandan Ma
A series of Ce-doped TiO2 nanoparticles with different doped amount and calcination temperature were prepared by sol-gel method. These obtained samples were characterized with X-ray diffraction (XRD), transmission electron microscope (TEM) and ultraviolet-visible diffuse reflectance spectra (DRS), and their photocatalytic activities were evaluated by the photocatalytic degradation of methyl orange. Results showed that Ce doping inhibits the growth of crystal size and the phase transformation from anatase to rutile, leads to lattice distortion and expansion of TiO2. Furthermore, Ce doping brings the red-shift of absorption profile and the increase of photons absorption in the range of 400-600 nm. Photocatalytic degradation of methyl orange shows that Ce doping improves the photocatalytic activity of TiO2. The optimal doped amount is 0.05 mol% and the optimal calcined temperature is 600 °C for the maximum photocatalytic degradation efficiency in our experiment.
Nano Energy | 2017
Dandan Ma; Jian-Wen Shi; Yajun Zou; Zhaoyang Fan; Xin Ji; Chunming Niu; Lianzhou Wang
Chemical Engineering Journal | 2017
Yajun Zou; Jian-Wen Shi; Dandan Ma; Zhaoyang Fan; Lu Lu; Chunming Niu
Nanoscale | 2018
Dandan Ma; Jian-Wen Shi; Yajun Zou; Zhaoyang Fan; Jinwen Shi; Linhao Cheng; Diankun Sun; Zeyan Wang; Chunming Niu
Journal of Power Sources | 2018
Jian-Wen Shi; Dandan Ma; Yajun Zou; Zhaoyang Fan; Jinwen Shi; Linhao Cheng; Xin Ji; Chunming Niu
Nanoscale | 2018
Jian-Wen Shi; Yajun Zou; Dandan Ma; Zhaoyang Fan; Linhao Cheng; Diankun Sun; Zeyan Wang; Chunming Niu; Lianzhou Wang