期刊文献+

Extraction efficiency enhancement of LEDs using 2-D photonic crystal 被引量:2

Extraction efficiency enhancement of LEDs using 2-D photonic crystal
原文传递
导出
摘要 Using photonic crystals (PCs), the extraction efficiency of the light-emitting diodes (LEDs) can be greatly enhanced by the effects of photonic band gap (PBG) and grating diffraction. The two theoretical methods are also discussed. Meanwhile, we demonstrate that LEDs can achieve high extraction efficiency by employing photonic crystal as diffraction grating. PCs with square lattice of cylindrical unit cells are fabricated in GaN layer of GaN-based blue LED. We present a theoretical discussion on the extraction efficiency of PC-LED, which relies on the effective medium theory and transmission matrix method to investigate the effect of lattice constant. The results show that the extraction efficiency of the high performance LEDs can achieve 61.8% when the lattice constant is 270 nm. Using photonic crystals (PCs), the extraction efficiency of the light-emitting diodes (LEDs) can be greatly enhanced by the effects of photonic band gap (PBG) and grating diffraction. The two theoretical methods are also discussed. Meanwhile, we demonstrate that LEDs can achieve high extraction efficiency by employing photonic crystal as diffraction grating. PCs with square lattice of cylindrical unit cells are fabricated in GaN layer of GaN-based blue LED. We present a theoretical discussion on the extraction efficiency of PC-LED, which relies on the effective medium theory and transmission matrix method to investigate the effect of lattice constant. The results show that the extraction efficiency of the high performance LEDs can achieve 61.8% when the lattice constant is 270 nm.
出处 《Optoelectronics Letters》 EI 2012年第3期186-189,共4页 光电子快报(英文版)
基金 supported by the National Natural Science Foundation of China (No.60877047) the Natural Science Foundation of Hebei Province (No.2010002002)
关键词 提取效率 光子晶体 LED 蓝色发光二极管 有效介质理论 光栅衍射 晶格常数 传输矩阵法 Diffraction Diffraction gratings Efficiency Extraction Gallium nitride Lattice constants Microcomputers Photonic band gap
  • 相关文献

参考文献12

  • 1Yang Guang-hua, Mao Lu-hong, Huang Chun-hong, Wang Wei and Guo Wei-lian, Optoelectronics Letters 6, 15 (2010).
  • 2Ming-Shyan Huang, Chuan-Cheng Huang, Yi-Chin Fang, Wei-Chi Lai and Yi-Liang Chen, Optic. 121, 944 (2010).
  • 3Hunt N. E. J., Schubert E. F., Kopf R. F., Sivco D. L., Cho A. Y. and Zydzik G. J., Applied Physics Letters 63, 2600 (2009).
  • 4Schubert E. F. and Kim J. K., Science 308, 1274 (2005).
  • 5Chia-Feng Lin, Ren-Hao Jiang, Chung-Chieh Yang, ChunMin Lin, Hsun-Chih Liu and Kun-Pin Huang, Journal of the Electrochemical Society 156, 930 (2009).
  • 6CUI De-sheng, GUO Wei-ling, CUI Bi-feng, YAN Wei-wei and LIU Ying, Journal of Optoelectronics·Laser 22, 1390 (2011). (in Chinese).
  • 7Hiroyuki Ichikawa and Toshihiko Baba, Applied Physics Letters 84, 457 (2004).
  • 8M. Francardi, L. Balet, A. Gerardino, N. Chauvin, D. Bitauld, L. H. Li, B. Alloing and A. Fiore, Applied Physics Letters 93, 3102 (2008).
  • 9Krister Bergenek, Christopher Wiesmann and Heribert Zull, IEEE Journal of Quantum Electronics 45, 1517 (2009).
  • 10Jonathan J. Wierer, Jr Aurelien David and Mischa M. Megens, Nature Photonics 3, 163 (2009).

同被引文献12

引证文献2

二级引证文献10

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部