Key Laboratory for Liquid-Solid Structural Evolution & Processing of Materials, Ministry of Education, School of Materials Scinece & Engineering, Shandong University, Jinan 250061, PR China.
Langmuir. 2010 Aug 3;26(15):12841-8. doi: 10.1021/la100910u.
Three-dimensional (3D) crystalline anatase titanium dioxide (TiO(2)) hierarchical nanostructures were synthesized through a facile and controlled hydrothermal and after-annealing process. The formation mechanism for the anatase TiO(2) 3D hierarchical nanostructures was investigated in detail. The 3D hierarchical nanostructures morphologies are formed by self-organization of several tens of radially distributed thin petals with a thickness of several nanometers with a larger surface area. The surface area of TiO(2) hierarchical nanostructures determined by the Brunauer-Emmett-Teller (BET) adsorption isotherms was measured to be 64.8 m(2) g(-1). Gas sensing properties based on the hierarchical nanostructures were investigated. A systematic study on sensitivity as a function of temperatures and gas concentrations was carried out. It reveals an improved ethanol gas sensing response property with a sensitivity of about 6.4 at 350 degrees C upon exposure to 100 ppm ethanol vapor for the TiO(2) hierarchical nanostructures. A gas sensing mechanism based on the adsorption-desorption of oxygen on the surface of TiO(2) is discussed and analyzed. This novel gas sensor can be multifunctional and promising for practical applications. Furthermore, the hierarchical nanostructures with high surface area can find variety of potential applications such as solar cells, biosensors, catalysts, etc.
通过一种简单且可控的水热后处理方法,合成了具有三维(3D)结晶锐钛矿二氧化钛(TiO2)分级纳米结构。详细研究了锐钛矿 TiO2 3D 分级纳米结构的形成机制。3D 分级纳米结构的形态由几十片具有数纳米厚度的、呈放射状分布的薄片自组装而成,具有更大的表面积。通过 Brunauer-Emmett-Teller(BET)吸附等温线测定的 TiO2 分级纳米结构的表面积为 64.8 m2/g。对基于分级纳米结构的气敏性能进行了研究。系统地研究了灵敏度随温度和气体浓度的变化。结果表明,在 350°C 下,TiO2 分级纳米结构对 100 ppm 乙醇蒸气的灵敏度约为 6.4,对乙醇气体的传感响应性能得到了改善。讨论和分析了基于 TiO2 表面氧的吸附-脱附的气敏机制。这种新型气体传感器具有多功能性,有望得到实际应用。此外,具有高表面积的分级纳米结构可以在太阳能电池、生物传感器、催化剂等领域得到广泛应用。