Wenhua Hou
Nanjing University
119 Papers
852 Citations
Wenhua Hou is an academic researcher from Nanjing University. The author has contributed to research in topics: Catalysis & High-resolution transmission electron microscopy. The author has an hindex of 35, co-authored 109 publications.
Chat about Author
Papers
Single-crystalline orthorhombic molybdenum oxide nanobelts: synthesis and photocatalytic properties
TL;DR: In this article, a solid-solution-solid transformation mechanism was proposed for the formation of crystalline MoO3 nanobelts, which were used as photocatalyst to degrade methylene blue (MB) under visible light irradiation.
Three-dimensional Dendritic Pt Nanostructures: Sonoelectrochemical Synthesis and Electrochemical Applications
TL;DR: In this article, a new and convenient sonoelectrochemical method was used to synthesize uniform three-dimensional (3D) dendritic Pt nanostructures (DPNs) at room temperature.
205
ZnO/CdS Hierarchical Nanospheres for Photoelectrochemical Sensing of Cu2+
TL;DR: In this paper, a photoelectrochemical sensor was developed based on the interaction between Cu2+ and CdS. The results showed that this sensor has a good selectivity and high sensitivity for detection.
163
Ag/Polypyrrole Core-Shell Nanostructures: Interface Polymerization, Characterization, and Modification by Gold Nanoparticles
TL;DR: In this paper, polyvinylpyrrolidone (PVP)-coated Ag composites were synthesized through an immiscible organic/inorganic biphasic system in the presence of PVP.
155
In Situ Preparation of Sandwich MoO3/C Hybrid Nanostructures for High‐Rate and Ultralong‐Life Supercapacitors
Hongmei Ji,Hongmei Ji,Xiaolin Liu,Zhijuan Liu,Bo Yan,Lin Chen,Yafeng Xie,Chao Liu,Wenhua Hou,Gang Yang +9 more
Abstract: This work presents a design of sandwich MoO3/C hybrid nanostructure via calcination of the dodecylamine‐intercalated layered α‐MoO3, leading to the in situ production of the interlayered graphene layer. The sample with a high degree of graphitization of graphene layer and more interlayered void region exhibits the most outstanding energy storage performance. The obtained material is capable of delivering a high specific capacitance of 331 F g−1 at a current density of 1 A g−1 and retained 71% capacitance at 10 A g−1. In addition, nearly no discharge capacity decay between 1000 and 10 000 continuous charge–discharge cycles is observed at a high current density of 10 A g−1, indicating an excellent specific capacitance retention ability. The exceptional rate capability endows the electrode with a high energy density of 41.2 W h kg−1 and a high power density of 12.0 kW kg−1 simultaneously. The excellent performance is attributed to the sandwich hybrid nanostructure of MoO3/C with broad ion diffusion pathway, low charge‐transfer resistance, and robust structure at high current density for long‐time cycling. The present work provides an insight into the fabrication of novel electrode materials with both enhanced rate capability and cyclability for potential use in supercapacitor and other energy storage devices.
135