TiN Enhancement of Output Performance for Light-Emitting Diodes under High Injection Current

2004 ◽  
Vol 43 (2) ◽  
pp. 594-597 ◽  
Author(s):  
Chien-Chih Liu ◽  
Wei-Ting Wang ◽  
Mau-Phon Houng ◽  
Yeong-Her Wang
Author(s):  
Xiaokun Zhang ◽  
Xiao-Dong Xiang ◽  
Yong Xiang

Although light-emitting diodes (LEDs) hold great promises for high-efficiency lighting applications, the cost per lumen still poses a challenge for LEDs to fast penetrate into the markets. Increasing the output power per LED chip reduces the number of chips required for a specific luminous flux, thus reducing the cost of LED luminaires. However, it is well known that the luminous output power of LEDs (Pout) cannot be enhanced simply by increasing the injection current density (Jinj) due to efficiency droop. Extensive efforts have been made towards avoiding efficiency droop at high injection current densities (e.g., Jinj > 50 A/cm2). Gardner et al. reported a double-heterostructure LED with an external quantum efficiency (EQE) of 40% at 200 A/cm2. Xie et al. introduced an electron-blocking layer into the LED devices and the EQE peak occurred at 900 A/cm2 approximately. Nevertheless, the EQE is always lower than 100%, excessive heat will accumulate in LEDs at high current densities and increase the junction temperatures, which will damage the device and limit its luminous output power and lifetime. In this paper, the recombination mechanism in the LED active area is analyzed and an analytic relationship between Pout and Jinj is proposed. The calculated results show that the best Pout currently achieved is far lower than its potential value. The temperature dependence of the Pout-Jinj relationship is also calculated and the thermal state of LEDs at high injection current densities predicted. The results demonstrate that LED luminaires with thermal management based on conventional fin-shaped heat sinks suffer from thermal runaway due to excessive heat accumulation before reaching their ultimate output power. The gap between the existing and predicted Pout is mainly due to thermal runaway of LED devices at high injection current densities, instead of efficiency droop. Therefore, the short-term solution of LED luminous output power enhancement should be better cooling of LED modules, such as jet/spray cooling, heat pipe cooling, or 3D embedded two-phase cooling. Long-term solutions continue to focus on reducing the efficiency droop with improved LED device structures and advanced materials.


2014 ◽  
Vol 38 ◽  
pp. 269-313 ◽  
Author(s):  
Vitaliy AVRUTIN ◽  
Shopan A. HAFIZ ◽  
Fan ZHANG ◽  
Ümit ÖZGÜR ◽  
Enrico BELLOTTI ◽  
...  

2019 ◽  
Vol 66 (11) ◽  
pp. 4805-4810 ◽  
Author(s):  
Hua Xiao ◽  
Xiangtian Xiao ◽  
Dan Wu ◽  
Rui Wang ◽  
Kai Wang ◽  
...  

2020 ◽  
pp. 147715352097693
Author(s):  
AN Padmasali ◽  
SG Kini

Light-emitting diode is the most dominant lighting technology, and lumen output performance is dependent on junction temperature and operating drive current. An experimental analysis is performed to study the thermal and drive current effect on lumen output, and an empirical model is developed to determine the optimum operating conditions of temperature and drive current so as to obtain a maximum lumen output profile. Three commercially available light-emitting diode down-lighter’s light-emitting diodes are chosen for the study. The investigation reveals that there exists an optimum drive current at which lumen output is maximum, and it has a linear relation with junction temperature. Pulse-soak testing was performed to study the deviations of pulsed and continuous operation of drive current to understand the performance of light-emitting diodes. The work helps light-emitting diode luminaire manufacturers to design a controlled power electronic circuit so as to maximize the lumen output effectively and accurately.


2013 ◽  
Vol 31 (5) ◽  
pp. 050809 ◽  
Author(s):  
Vitaliy Avrutin ◽  
Shopan din Ahmad Hafiz ◽  
Fan Zhang ◽  
Ümit Özgür ◽  
Hadis Morkoç ◽  
...  

Author(s):  
Guan-Bo Lin ◽  
David S. Meyaard ◽  
E. Fred Schubert ◽  
Jaehee Cho ◽  
Jong Kyu Kim ◽  
...  

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