Kim Il Hee, Lee Hyerim, Yu Areum, Jeong Jae Hwan, Lee Youngmi, Kim Myung Hwa, Lee Chongmok, Kim Young Dok
Department of Chemistry, Sungkyunkwan University, Suwon, 16419, Republic of Korea.
Nanotechnology. 2018 Apr 27;29(17):175702. doi: 10.1088/1361-6528/aaaf12. Epub 2018 Feb 13.
NiO/NiCoO nanotubes with a diameter of approximately 100 nm are synthesized using Ni and Co precursors via electro-spinning and subsequent calcination processes. The tubular structure is confirmed via transmission electron microscopy imaging, whereas the structures and elemental compositions of the nanotubes are determined using x-ray diffraction, energy dispersive x-ray spectroscopy, and x-ray photoelectron spectroscopy. N adsorption isotherm data reveal that the surface of the nanotubes consists of micropores, thereby resulting in a significantly higher surface area (∼20 m g) than expected for a flat-surface structure (<15 m g). Herein, we present a study of the catalytic activity of our novel NiO/NiCoO nanotubes for CO and acetaldehyde oxidation. The catalytic activity of NiO/NiCoO is superior to Pt below 100 °C for CO oxidation. For acetaldehyde oxidation, the total oxidation activity of NiO/NiCoO for acetaldehyde is comparable with that of Pt. Coexistence of many under-coordinated Co and Ni active sites in our structure is suggested be related to the high catalytic activity. It is suggested that our novel NiO/NiCoO tubular structures with surface microporosity can be of interest for a variety of applications, including the catalytic oxidation of harmful gases.
使用镍和钴前驱体通过静电纺丝及后续煅烧工艺合成了直径约为100纳米的NiO/NiCoO纳米管。通过透射电子显微镜成像确认了管状结构,而纳米管的结构和元素组成则使用X射线衍射、能量色散X射线光谱和X射线光电子能谱进行测定。N吸附等温线数据表明,纳米管表面由微孔组成,因此其表面积(约20 m²/g)比平面结构预期的表面积(<15 m²/g)显著更高。在此,我们展示了对新型NiO/NiCoO纳米管用于CO和乙醛氧化的催化活性的研究。在100°C以下,NiO/NiCoO对CO氧化的催化活性优于Pt。对于乙醛氧化,NiO/NiCoO对乙醛的总氧化活性与Pt相当。我们结构中许多低配位的Co和Ni活性位点的共存被认为与高催化活性有关。有人提出,我们具有表面微孔性的新型NiO/NiCoO管状结构可用于包括有害气体催化氧化在内的各种应用。