已经得到个称赞     给我点赞
  • 博士生导师
  • 招生学科专业:
    物理学 -- 【招收博士、硕士研究生】 -- 物理学院
    电子信息 -- 【招收博士、硕士研究生】 -- 物理学院
  • 电子邮箱:
  • 所在单位:物理学院
  • 学历:中国科学技术大学
  • 办公地点:理学院482
  • 性别:
  • 联系方式:18851870557
  • 学位:理学博士学位
  • 职称:研究员
  • 毕业院校:中国科学技术大学
论文成果
当前位置: 中文主页 >> 科学研究 >> 论文成果
Fluorescent incandescent light sources from individual quadrilateral ZnO microwire via Ga-incorporation
  • 点击次数:
  • 所属单位:理学院
  • 发表刊物:Opt. Express
  • 摘要:By means of nanophotonics principle, the thermal radiation can be tailored, thus, traditional tungsten lamp light source can glow the vitality and the vigor due to the low-efficiency approaching to commercial fluorescent or light-emitting diode bulbs. However, too far by demanding exacting terms, such as high-temperature thermal radiation (∼ 3000 K), high-vacuum encapsulation technology, restricted spectrally controllable source and so on, tungsten-based incandescent lamp filament has greatly limited the application in lighting, diagnosis and treatment, communication, imaging, etc. Herein, individual Ga-doped ZnO microwires (ZnO:Ga MWs) were successfully synthesized, which can be utilized to construct typical incandescent sources. By adjusting the Ga-incorporation, lighting colors are tuned in the visible spectral band. Especially, by incorporating Au quasiparticle nanofilms, the incandescent lighting features can further be modulated, such as the emission peaks, the modulation of lighting regions. Therefore, individual ZnO:Ga MWs based incandescent emitters can undertake a new function of the oldest, affordable and easily prepared light sources. While preliminary, individual ZnO:Ga MWs being treated as efficient incandescent light sources, can also open up intriguing scientific questions, and possible applications of linear, transparent, flexible displays and optical interconnects with electronic circuits. © 2019 Optical Society of America.
  • 是否译文:
  • 发表时间:2019-11-11
  • 合写作者:Mao, Wangqi,Ji, Jiaolong,Liu, Yang,阚彩侠
  • 通讯作者:姜明明
  • 发表时间:2019-11-11