Controlling the influence of Auger recombination on the performance of quantum-dot light-emitting diodes

被引:655
作者
Bae, Wan Ki [1 ,2 ]
Park, Young-Shin [1 ]
Lim, Jaehoon [3 ]
Lee, Donggu [3 ]
Padilha, Lazaro A. [1 ,4 ]
McDaniel, Hunter [1 ]
Robel, Istvan [1 ]
Lee, Changhee [3 ]
Pietryga, Jeffrey M. [1 ]
Klimov, Victor I. [1 ]
机构
[1] Los Alamos Natl Lab, Div Chem, Los Alamos, NM 87545 USA
[2] Korea Inst Sci & Technol, Photoelect Hybrid Res Ctr, Seoul 136791, South Korea
[3] Seoul Natl Univ, Inter Univ Semicond Res Ctr, Sch Elect Engn & Comp Sci, Seoul 151744, South Korea
[4] Univ Estadual Campinas, Inst Fis Gleb Wataghin, BR-13083970 Campinas, SP, Brazil
来源
NATURE COMMUNICATIONS | 2013年 / 4卷
关键词
SEMICONDUCTOR NANOCRYSTALS; OPTICAL GAIN; ELECTROLUMINESCENCE; SUPPRESSION; DEVICES;
D O I
10.1038/ncomms3661
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Development of light-emitting diodes (LEDs) based on colloidal quantum dots is driven by attractive properties of these fluorophores such as spectrally narrow, tunable emission and facile processibility via solution-based methods. A current obstacle towards improved LED performance is an incomplete understanding of the roles of extrinsic factors, such as non-radiative recombination at surface defects, versus intrinsic processes, such as multicarrier Auger recombination or electron-hole separation due to applied electric field. Here we address this problem with studies that correlate the excited state dynamics of structurally engineered quantum dots with their emissive performance within LEDs. We find that because of significant charging of quantum dots with extra electrons, Auger recombination greatly impacts both LED efficiency and the onset of efficiency roll-off at high currents. Further, we demonstrate two specific approaches for mitigating this problem using heterostructured quantum dots, either by suppressing Auger decay through the introduction of an intermediate alloyed layer, or by using an additional shell that impedes electron transfer into the quantum dot to help balance electron and hole injection.
引用
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页数:8
相关论文
共 38 条
[1]   Electronic and excitonic processes in light-emitting devices based on organic materials and colloidal quantum dots [J].
Anikeeva, P. O. ;
Madigan, C. F. ;
Halpert, J. E. ;
Bawendi, M. G. ;
Bulovic, V. .
PHYSICAL REVIEW B, 2008, 78 (08)
[2]   Quantum Dot Light-Emitting Devices with Electroluminescence Tunable over the Entire Visible Spectrum [J].
Anikeeva, Polina O. ;
Halpert, Jonathan E. ;
Bawendi, Moungi G. ;
Bulovic, Vladimir .
NANO LETTERS, 2009, 9 (07) :2532-2536
[3]   Controlled Alloying of the Core-Shell Interface in CdSe/CdS Quantum Dots for Suppression of Auger Recombination [J].
Bae, Wan Ki ;
Padilha, Lazaro A. ;
Park, Young-Shin ;
McDaniel, Hunter ;
Robel, Istvan ;
Pietryga, Jeffrey M. ;
Klimov, Victor I. .
ACS NANO, 2013, 7 (04) :3411-3419
[4]   Origins of Low Quantum Efficiencies in Quantum Dot LEDs [J].
Bozyigit, Deniz ;
Yarema, Olesya ;
Wood, Vanessa .
ADVANCED FUNCTIONAL MATERIALS, 2013, 23 (24) :3024-3029
[5]   High-Efficiency Silicon Nanocrystal Light-Emitting Devices [J].
Cheng, Kai-Yuan ;
Anthony, Rebecca ;
Kortshagen, Uwe R. ;
Holmes, Russell J. .
NANO LETTERS, 2011, 11 (05) :1952-1956
[6]   High-performance crosslinked colloidal quantum-dot light-emitting diodes [J].
Cho, Kyung-Sang ;
Lee, Eun Kyung ;
Joo, Won-Jae ;
Jang, Eunjoo ;
Kim, Tae-Ho ;
Lee, Sang Jin ;
Kwon, Soon-Jae ;
Han, Jai Yong ;
Kim, Byung-Ki ;
Choi, Byoung Lyong ;
Kim, Jong Min .
NATURE PHOTONICS, 2009, 3 (06) :341-345
[7]   Auger Recombination Suppression in Nanocrystals with Asymmetric Electron-Hole Confinement [J].
Climente, Juan I. ;
Movilla, Jose L. ;
Planelles, Josep .
SMALL, 2012, 8 (05) :754-759
[8]   Electroluminescence from single monolayers of nanocrystals in molecular organic devices [J].
Coe, S ;
Woo, WK ;
Bawendi, M ;
Bulovic, V .
NATURE, 2002, 420 (6917) :800-803
[9]  
COLVIN VL, 1994, NATURE, V370, P354, DOI 10.1038/370354a0
[10]   Suppression of Auger Processes in Confined Structures [J].
Cragg, George E. ;
Efros, Alexander L. .
NANO LETTERS, 2010, 10 (01) :313-317