Antony R, Theodore David S, Karuppasamy K, Sanjeev Ganesh, Balakumar S
Centre for Scientific and Applied Research, PSN College of Engineering and Technology, Tirunelveli 627 152, Tamil Nadu, India.
Centre for Scientific and Applied Research, PSN College of Engineering and Technology, Tirunelveli 627 152, Tamil Nadu, India.
Spectrochim Acta A Mol Biomol Spectrosc. 2014 Apr 24;124:178-86. doi: 10.1016/j.saa.2013.12.061. Epub 2013 Dec 19.
This study was carried out to investigate the effect of electron beam irradiation on the spectral and catalytic properties of chitosan supported (ONClCl) tetra coordinated Co(II) complex, [Co(OIAC)Cl2]. The complex was subjected to electron beam irradiation of 100 Gy, 1 kGy and 10 kGy doses. Chain scission of chitosan was observed on irradiation at 100 Gy and 10 kGy and chain linking at 1 kGy as evidenced by viscosity and FT-IR spectroscopic studies. This observation was also confirmed by thermo gravimetric and differential thermogravimetric (TG-DTG) analysis. It revealed that the thermal stability of the complex was increased at 1 kGy irradiation and decreased at 100 Gy and 10 kGy. In addition, the effect of electron beam irradiation on the surface morphology of the complex was studied by scanning electron microscopy. Catalytic abilities of both non-irradiated complex and irradiated complexes were determined and compared in the cyclohexane oxidation using hydrogen peroxide oxidant. The catalytic activity was found to increase after irradiation at all doses. Though the complex irradiated at 10 kGy showed highest conversion efficiency, irradiation at 1 kGy is suggested as the best dose due to the extensive reusability and adequate catalytic ability of the complex.
本研究旨在探究电子束辐照对壳聚糖负载的(ONClCl)四配位钴(II)配合物[Co(OIAC)Cl2]的光谱和催化性能的影响。该配合物分别接受了100 Gy、1 kGy和10 kGy剂量的电子束辐照。通过粘度和傅里叶变换红外光谱研究证明,在100 Gy和10 kGy辐照下观察到壳聚糖的断链,而在1 kGy辐照下观察到壳聚糖的交联。热重分析和微商热重分析(TG-DTG)也证实了这一观察结果。结果表明,在1 kGy辐照下配合物的热稳定性增加,而在100 Gy和10 kGy辐照下热稳定性降低。此外,通过扫描电子显微镜研究了电子束辐照对配合物表面形态的影响。测定并比较了未辐照配合物和辐照后配合物在以过氧化氢为氧化剂的环己烷氧化反应中的催化能力。结果发现,所有剂量辐照后催化活性均增加。尽管在10 kGy辐照的配合物显示出最高的转化效率,但由于该配合物具有广泛的可重复使用性和足够的催化能力,建议1 kGy辐照为最佳剂量。