采用限定变量的方法,运用AFORS-HET(Automat FOR Simulation of HETerostructures)软件计算模拟了不同厚度、掺杂浓度和禁带宽度的非晶硅薄膜背场以及不同厚度、禁带宽度的非晶硅本征层对a-Si(p)/c-Si(n)异质结太阳电池的影响。结果表明,在其它参数不变的情况下,增加较薄的背场和中间本征层,可以提高太阳电池的整体性能,其光电转换有很大程度提高,其最高转换效率可达20.75%;其中,中间本征层在厚度不超过20nm时,对电池的短路电流影响不大,而其它性能则相对下降;当非晶硅薄膜背场的掺杂浓度为1019cm-3以上,带隙为1.7eV,厚度为5nm时,电池性能最佳。
A novel surface modification method was proposed to improve the tribological property of Si. Multilayers were grown on Si(100) substrate by self-assembling monolayer (SAMs) method and filtered catholic vacuum arc (FCVA) technique. The film composition and structure were characterized by using x-ray photoelectron spectroscope (XPS) and Raman spectroscopy (Raman). Surface morphology and the roughness were also analyzed by an atomic force microscope (AFM) and a scanning electron microscopy (SEM). The frictional behaviors of the films were evaluated by a UMT tester. Results showed that elastomeric nanocomposite monolayer prepared by SAM was uniformly distributed and isotropy, and the diamond-like carbon (DLC) film was successfully deposited by the FCVA technique. The friction coefficients of the prepared samples were in the range of 0.108-0.188. Furthermore, the friction coefficient slightly increased but the surface quality of the wear trace was improved after adding the copolymer elastomeric macromolecules SEBS on aminopropyl-triethoxysilane (APS) layer due to the inherent long chain of SEBS which abated the immediate impulsion at the interface and changed the kinetic energy into elastic potential energy, and stored it in SEBS.