铜片上水热法制备纳米Cu2S薄膜及光吸收性能
Characterization and Optical Absorption Property of Cu2S Nano-Films Prepared by Hydrothermal Method on Cu Foil
摘要: 采用水热法以硫代乙酰胺为硫源在铜片上沉积了Cu2S纳米薄膜,研究了添加剂种类对产物结构、形貌及紫外–可见光吸收性能的影响。X射线衍射仪(XRD)、场发射扫描电镜(FE-SEM)和红外光谱(IR)测试表明,产物为正交结构Cu2S,添加剂影响着产物的结晶及形貌。机理分析显示,在水热条件下添加剂以不同的方式参与了薄膜的形成过程。紫外–可见(UV-vis)光吸收性能测试及直接带隙计算表明,与Cu2S本体相比,所得薄膜带隙出现了不同程度的蓝移,这归因于样品的量子限制效应影响大于库仑项的影响。
Abstract: Cu2S nano-films were synthesized on copper foil with TAA as sulfur sources by hydrothermal method. The effect of the different additions on structures, morphology and UV-vis absorption property of the films has been studied by X-Ray Diffraction (XRD), Scanning Electron Microscope (FESEM) and Infrared (IR) spectra and UV-vis absorption spectroscopy. The results show that the crystallinity and morphology of the Cu2S with orthogonal structure depended on the additions. The formation of the films was thought to come from the interaction between the additions and the reactants under the hydrothermal conditions. The UV-vis absorption spectra and the (αhν)2-hν curves suggest that the calculated band gap values indicated the distinct blue shift compared to that of the bulk Cu2S, which is attributed to the stronger quantum confinement effects than the Coulomb term.
文章引用:张朔, 刘劲松, 李子全, 陈建康, 丛孟启, 许奇, 丁滔, 王春花, 高雪琴, 王莉萍. 铜片上水热法制备纳米Cu2S薄膜及光吸收性能[J]. 纳米技术, 2012, 2(1): 7-12. http://dx.doi.org/10.12677/nat.2012.21002

参考文献

[1] G. M. Liu, T. Schulmeyer, J. Brötz, et al. Interface properties and band alignment of Cu2S/CdS thin film solar cells. Thin Solid Films, 2003, 431: 477-482.
[2] K. Okamoto, S. Kawai. Electrical conduction and phase transition of copper sulfides. Japanese Journal of Applied Physics, 1973, 12(8): 1130-1138.
[3] E. I. Kapinus. Fluorescence properties of nanosized sulfides. Physical Chemistry of Nanoclusters and Nanomaterials, 2011, 85(4): 668-671.
[4] I. J. Plante, T. W. Zeid, P. D. Yang, et al. Synthesis of metal sulfide nanomaterials via thermal decomposition of sin-gle-source precursors. Journal of Materials Chemistry, 2010, 20(32): 6612- 6617.
[5] R. L. N. Chandrakanthi, M. A. Careem. Preparation and characterization of CdS and Cu2S nanopar-ticle/polyaniline composite films. Thin Solid Films, 2002, 417(1-2): 51-56.
[6] H. M. Pathan, J. D. Desai and C. D. Lokhande. Modified chemical deposition and physico-chemical properties of copper sulphide (Cu2S) thin films. Applied Surface Science, 2002, 202(1-2): 47-56.
[7] P. Zhang, L. Gao. Copper sulfide flakes and nanodisks. Journal of Materials Chemistry, 2003, 13(8): 2007-2010.
[8] K. Anuar, Z. Zainal, M. Z. Hussein, et al. Cathodic electrodeposition of Cu2S thin film for solar energy conversion. Solar Energy Materials & Solar Cells, 2002, 73(4): 351-365.
[9] A. Šetkusa, A. Galdikasa, A. Mironasa, et al. Properties of CuS thin film based structures: Influence on the sensitivity to ammonia at room temperatures. Thin Solid Films, 2001, 391(2): 275- 281.
[10] P. Parreira, G. Lavareda, A. Amaral, et al. Transparent p-type CuxS thin films. Journal of Alloys and Compounds, 2011, 509 (16): 5099-5104.
[11] F. W. Zhuge, X. M. Li, X. D. Gao, et al. Synthesis of stable amorphous Cu2S thin film by successive ion layer adsorption and reaction method. Materials Letters, 2009, 63(8): 652-654.
[12] Y. T. Nien, I. G. Chen. Rapid thermal annealing of chemical bath-deposited CuxS films and their characterization. Journal of Alloys and Compounds, 2009, 471(1-2): 553-556.
[13] S. Gorai, D. Ganguli and S. Chaudhuri. Morphological control in solvothermal synthesis of copper sulphides on copper foil. Materials Research Bulletin, 2007, 42(2): 345-353.
[14] S. Lv, H. Suo, X. Zhao, et al. One-step synthesis of Cu2S nanostructures with two different morphologies on either side of a co- pper substrate. Journal of Alloys and Compounds, 2009, 479 (1-2): 43-46.
[15] V. S. Vidhya, J. V. Rani, A. R. Kumar, et al. Electrodeposition and properties of nanocrystalline ZnO films prepared in the presence of anionic surfactant SDS and ionic liquid 1-butyl-3- methylimidazolium methylsulfate. Journal of Materials Science- Materials Electronics, 2011, 22(9): 1460-1465.
[16] 周杰, 贾殿赠, 刘浪. 硫化铜纳米棒的低热固相合成及其光学性能[J]. 高等学校化学学报, 2005, 26(4): 620-622.
[17] M. C. Brelle, C. L. Torres-Martinez, J. C. McNulty, et al. Synthesis and characterization of CuxS nanoparticles. Nature of the infrared band and charge-carrier dynamics. Pure and Applied Chemistry, 2000, 72(1-2): 101-117.
[18] A. D. Yoffe. Low-dimensional systems: Quantum size effects and electronic properties of semiconductor microcrystallites (zero- dimensional systems) and some quasi-two-dimensional systems. Advances in Physics, 1993, 42(2): 173-262.