期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
激光测距系统中光学屏蔽膜系的研究 被引量:1
1
作者 陈荣发 杨树和 赵毅红 《真空》 CAS 北大核心 2002年第5期19-23,共5页
针对激光测距系统中光路成像受电磁波干扰影响测量质量的问题 ,本文分析比较了金属光学薄膜与ITO薄膜的光学屏蔽特性。采用磁控反应溅射的方法在关键光学零件表面制备了 ITO膜 ,经过性能测试表明
关键词 激光测距系统 光学屏蔽膜系 金属光学薄膜 ITO薄膜 光路屏蔽
下载PDF
Tradeoffbetween Narrowing Optical Band Gap and Enhancing Electrical Conductivity of the Metal Nanoparticles-Modified Titanium Oxide Films
2
作者 Aung Chan Thar Thaung Hlaing Win +1 位作者 Nyein Wint Lwin Than Zaw Oo 《Journal of Physical Science and Application》 2015年第3期220-225,共6页
The n-type semiconducting titanium oxide thin films are well-known as electron transporting interlayer in photovoltaic cells. The favorable characteristics of interlayers in photovoltaics are high optical transmittan... The n-type semiconducting titanium oxide thin films are well-known as electron transporting interlayer in photovoltaic cells. The favorable characteristics of interlayers in photovoltaics are high optical transmittance (T%), wide band gap energy (Eg) and high electrical conductivity (σ). Modifying titanium oxide films with metal nanoparticles would increase electrical conductivity but reduce optical band gap energy. We developed the sol-gel derived titanium suboxide (TiOx) films modified with silver (Ag) or gold (Au) or copper (Cu) nanoparticles (NPs). This study explores a tradeoff between narrowing optical band gap and enhancing electrical conductivity of nanostructured TiOx films by controlling the Au- or Ag- or Cu-NPs loading concentrations (mol%) in titania. The Au- and Cu-NPs loading concentration of 4 mol% should meet a tradeoff which yields the higher T%, wider Eg and higher compared to those of pure TiOx films. In addition, since the pure Cu is not thermodynamically stable in ambience as compared to Au and Ag, the stability of as-obtained colloidal CuNPs is also examined. A careful examination of the time evolution of surface plasmon resonance (SPR) bands of CuNPs indicates that their stability is only up to 4 h. 展开更多
关键词 Titanium suboxide metal nanoparticles electrical conductivity band gap energy.
下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部