亚洲免费av电影一区二区三区,日韩爱爱视频,51精品视频一区二区三区,91视频爱爱,日韩欧美在线播放视频,中文字幕少妇AV,亚洲电影中文字幕,久久久久亚洲av成人网址,久久综合视频网站,国产在线不卡免费播放

        ?

        Performance Improvement of Blue InGaN Light-em itting Diode w ith A Special Designed Electron-blocking Layer

        2013-08-13 06:26:38DINGBinbinZHAOFangSONGJingjingXIONGJianyongZHENGShuwenYUXiaopengXUYiqinZHOUDetaoZHANGTaoFANGuanghan
        發(fā)光學報 2013年3期
        關(guān)鍵詞:學報

        DING Bin-bin,ZHAO Fang,SONG Jing-jing,XIONG Jian-yong,ZHENG Shu-wen,YU Xiao-peng,XU Yi-qin,ZHOU De-tao,ZHANG Tao,F(xiàn)AN Guang-han

        (Institute of Opto-Electronic Materials and Technology,South China Normal University,Guangzhou 510631,China)

        *Corresponding Author,E-mail:gfan@scnu.edu.cn

        1 Introduction

        The InGaN/GaN multiple quantum well(MQW)light-emitting diode(LED)is promising to replace the conventional incandescent and fluorescent lamps due to its inherent higher energy efficiency and other advantages[1-3].However,these devices suffer from a rapid efficiency droop with increasing injection of current[4-5], which is detrimental for high-brightness applications.Various explanations on themechanisms of the efficiency droop have been proposed,such as carrier leakage from the active region[6-8],Auger recombination[9-10],poor hole injection[11],and polarization effect[12]etc.The origin of the efficiency droop,however,is not clearly understood yet.Recently,many approaches,such as the usage of InGaN barriers[13],AlInGaN barriers[14],Al-GaN barriers[15],staggered quantum wells(QWs)[16-18],AlGaN/GaN superlattice(SL)electron blocking layer(EBL)of gradual Almole fraction[19],graded electron blocking layer(GEBL)[20],AlGaN-GaNAlGaN(AGA)electron-blocking layer(EBL)[21]and triangular shaped MQW[22],are reported for improving the optical performance.

        The published simulation results show that the electron leakage may play an important role for the efficiency droop.Therefore,the insertion of an Al-GaN layer between the last QW barrier and p-type hole-injection layer has been suggested with the hope that this wide-band gap material layer would act as an electron-blocking layer(EBL)to suppress the escape of the electrons out of the active region into the p-type hole-injection layer.However,recently published studies point out that the electron confinement by a typical AlGaN EBL is not sufficiently effective to solve the efficiency droop problem.Furthermore,the use of AlGaN EBL can cause some undesired effects such as prohibiting the holes from injecting into the active region,which degrades the luminescence characteristics of the blue LED[23-24].

        In this paper,we proposed AlGaN-GaN-AlGaN EBL with gradual Al composition(GAGA)to improve the optical performance.The light output power,internal quantum efficiency(IQE),electrostatic field,radiative recombination rate,energy band and carrier concentration of the LEDs with the conventional EBL,AGA EBL and GAGA EBL are investigated numerically with the APSYS(Advance Physical Model of Semiconductor Devices)simulation software,which is capable of dealing with the physical properties of LEDs by solving the Poisson's equation,current continuity equations,carrier transport equation,quantum mechanical wave equation,and photon rate equation.

        2 Structure and Parameters

        The original blue InGaN/GaN MQW LED used in this paper as a reference was grown on a c-plane sapphire substrate,followed by a 4-μm-thick n-GaN layer(n-doping=2×1018cm-3).The active region consisted of six 2.5-nm-thick In0.15Ga0.85N quantum wells(QWs),sandwiched by seven 10-nm-thick GaN barriers.On top of the active region were a 20-nm-thick p-Al0.15Ga0.85N EBL(p-doping c=5 ×1017cm-3)and a 0.2-μm-thick p-GaN cap layer(p-doping c=7×1017cm-3).The device geometry was designed into a rectangular shape of 300μm×300μm.For the LED with AGA EBL,the conventional Al0.15Ga0.85N layer was replaced by an Al0.15Ga0.85N-GaN-Al0.15Ga0.85N EBL.For the LED with GAGA,its structure was identical to that of the structure AGA,but the Al0.15Ga0.85N-GaN-Al0.15-Ga0.85N EBL was replaced by an Al0.07Ga0.93N-Al0.15-Ga0.85N-GaN-Al0.15Ga0.85N-Al0.07Ga0.93N EBL.These three structures are shown in Fig.1.The operating temperature is assumed to be 300 K and the internal absorption within the LED device is set to be 500 m-1.Other parameters can be found in Ref.25.

        Fig.1 Schematic of original LED with a conventional AlGaN EBL(conventional structure),LED with a common AlGaN-GaN-AlGaN EBL(AGA structure),and LED with a gradual Al composition AlGaN-GaN-AlGaN EBL(GAGA structure).

        3 Results and Discussion

        Fig.2 shows the light output power and internal quantum efficiency(IQE)for the LEDs with the conventional EBL,AGA EBL and GAGA EBL.It is evident that the light output power and IQE are significantly enhanced in the LEDswith AGA EBL and GAGA EBL compared with the conventional AlGaN EBL.It also shows that,comparing with the LED with AGA EBL,the light output power and efficiency droop of the LED with GAGA EBL are improved.According to Fig.2(b),conventional structure has smallest internal quantum efficiency(IQE)and the worst efficiency droop of 22.7%.GAGA structure shows the highest IQE and the significantlymitigated efficiency droop of 3.7%.

        Fig.2 (a)Lightoutputpower and(b)internalquantum efficiency(IQE)for the LEDs with the conventional EBL,AGA EBL and GAGA EBL.

        Fig.3 shows that the degree of influence on the electrostatic fields and radiative recombination in the active region of different structures is different.As shown in the Fig.3(a) ~ (c),the electrostatic field in the active region of conventional structure ismuch stronger than that of the other two structures especially for the last QW which is near the EBL,and the electrostatic field in the active region ofGAGA structure are smallest.A stronger electrostatic field in the active region will lead to the bending band,poor overlap of electron and hole wave functions,and hence reduced radiative recombination rate. Therefore,GAGA structure has an advantage over the other two structures in radiative recombination due to the smaller electrostatic field in the active region,which can be seen in Fig.3(d) ~ (f).

        Fig.3 (a) ~(c)Electrostatic fields and(d) ~(f)radiative recombination rates of the LEDswith the conventional EBL,AGA EBL and GAGA EBL at200 mA.

        Fig.4 shows the band diagrams and carrier concentrations of the LEDs with the conventional EBL,AGA EBL and GAGA EBL.As shown in Fig.4(a),piezoelectric polarization field along with the spontaneous polarization field pulls down the energy band at the last barrier and AlGaN EBL interface due to the latticemismatch,which also can be seen in Fig.3(a).The lattice mismatch between the last GaN QW barrier and AlGaN EBL can generate a strong piezoelectric polarization field.As a result,the effective potential barrier height for electrons in the conduction band of the EBL is reduced and the electron leakage can not be effectively suppressed.Moreover,because of the band bending effect,the EBL also acts as a potential barrier for holes which may hinder the holes from injecting into the active region.Fig.4(a) ~ (c)illustrates the energy band diagrams of the LEDs with the conventional AlGaN EBL,AGA EBL and GAGA EBL at 200 mA,respectively.As shown in the Fig.4,the LED with the conventional EBL,the effective potential height for holes in the valance band near the lastQW barrier and the AlGaN EBL(735 meV)ismuch greater than that of the LED with AGA EBL(565 meV)and GAGA EBL(513 meV),which denotes that holes aremore difficult to inject into the active region in the LED with AGA EBL and GAGA EBL.Effective potential height for electrons in the conduction band at the same part(766 meV)is much smaller than that of the LED with AGA EBL(800 meV)and GAGA EBL(850meV).As a result,it can be seen in Fig.4(d) ~ (f)that conventional structure has the worst electron leakage and smallesthole injection efficiency,while GAGA structure acquires the lowest electron leakage and highest hole injection efficiency,especially in the firstQW and the last QW.This can be explained as follows:(1)Because of the tunneling effect[20],AGA structure and GAGA structure obtain better electron leakage and higher hole injection efficiency over that of conventional structure;(2)Comparing with AGA structure,GAGA structure has the lowest latticemismatch between the last GaN QW barrier and EBL.Consequently,the LED with GAGA EBL show much better performances in the hole injection,electron confinement,and efficiency droop than those with the conventional EBL and AGA EBL.

        Fig.4 (a)~(c)Energy band diagrams and(d) ~(f)carrier concentrations of the LEDs with the conventional EBL,AGA EBL and GAGA EBL at200mA.

        4 Conclusion

        In conclusion,blue InGaN LEDs with the conventional EBL,AGA EBL and GAGA EBL have been investigated numerically.When GAGA structure is used,the hole injection efficiency into the active region can be greatly increased,the electron leakage can be reduced,and the electrostatic field in the active region can be considerably relieved.The InGaN LED with an AlGaN-GaN-AlGaN electron-blocking layer with gradual Al composition has significantly improved optical performance such as much bigger recombination rate and higher IQE.Moreover,the efficiency droop of this structure is markedly alleviated.

        [1]Muramoto Y,Kimura M,Dempo A,etal.High-efficiency UV LEDs and RGBwhite LEDs for lighting and LCD backlights[J].J.Soc.Inf.Disp.,2011,19(12):907-912.

        [2]Pimputkar S,Speck J,DenBaars SP,et al.Prospects for LED lighting[J].Nat.Photonics,2009,3(4):180-182.

        [3]Horiuchi N.Light-emitting diodes:Naturalwhite light[J].Nat.Photonics,2010,4(11):738.

        [4]Mukai T,Yamada M,Nakamura S.Characteristics of InGaN-based UV/blue/green/amber/red light-emitting diodes[J].Jpn.J.Appl.Phys.,Part1,1999,38:3976-3981.

        [5]Sun W,Shatalov M,Deng J,et al.Efficiency droop in 245-247 nm AlGaN light-emitting diodes with continuous wave 2 mW output power[J].Appl.Phys.Lett.,2010,96(6):061102-1-3.

        [6]Kim M H,Schubert M F,Dai Q,et al.Origin of efficiency droop in GaN-based light-emitting diodes[J].Appl.Phys.Lett.,2007,91(18):183507-1-3.

        [7]SchubertM F,Chhajed S,Kim JK,etal.Effectof dislocation density on efficiency droop in GaInN/GaN light-emitting diodes[J].Appl.Phys.Lett.,2007,91(23):231114-1-3.

        [8]Rozhansky IV,Zakheim D A.Analysis of dependence of electroluminescence efficiency of AlInGaN LED heterostructures on pumping[J].Phys.Status Solidi C,2006,3(6):2160-2164.

        [9]Delaney K T,Rinke Pand Van deWalle CG.Auger recombination rates in nitrides from firstprinciples[J].Appl.Phys.Lett.,2009,94(19):191109-1-3.

        [10]Shen Y C,Mueller G O,Watanabe S,et al.Auger recombination in InGaN measured by photoluminescence[J].Appl.Phys.Lett.,2007,91(14):141101-1-3.

        [11]Rozhansky IV,Zakheim D A.Analysis of the causes of the decrease in the electroluminescence efficiency of AlGaInN light-emitting-diode heterostructures at high pumping density[J].Semiconductors,2006,40(7):839-845.

        [12]Ghazai A J,Thahab SM,Hassan H A,etal.Quaternary ultraviolet AlInGaNMQW laser diode performance using quaternary AlInGaN electron blocking layer[J].Opt.Exp.,2011,19(10):9245-9254.

        [13]Kuo Y K,Chang JY,TsaiM C,etal.Advantages of blue InGaNmultiple-quantum well light-emitting diodeswith InGaN barriers[J].Appl.Phys.Lett.,2009,95(1):011116-1-3.

        [14]Fu Y K,Jiang R H,Lu Y H,etal.The effectof trimethylgallium flows in the AlInGaN barrier on optoelectronic characteristics of near ultraviolet light-emitting diodes grown by atmospheric pressuremetalorganic vapor phase epitaxy [J].Appl.Phys.Lett.,2011,98(12):121115-1-3.

        [15]Song JJ,Zhang Y Y,Zhao F,etal.Effectof the number of quantum wells on InGaN/AlGaN LED[J].Chin.J.Lumin.(發(fā)光學報),2012,33(12):1368-1372(in Chinese).

        [16]Zhao H,Liu G,Zhang J,et al.Approaches for high internal quantum efficiency green InGaN light-emitting diodes with large overlap quantum wells[J].Opt.Exp.,2011,19(4):A991-1007.

        [17]Liao C T,TsaiM C,Liou B T,etal.Improvement in output power of a 460 nm InGaN light-emitting diode using staggered quantum well[J].J.Appl.Phys.,2010,108(6):063107-1-6.

        [18]Zhao H and Tansu N.Optical gain characteristics of staggered InGaN quantum wells lasers[J].J.Appl.Phys.,2010,107(11):113110-1-3.

        [19]Zhang Y Y,Yin Y A.Performance enhancementof blue light-emitting diodeswith a special designed AlGaN/GaN superlattice electron-blocking layer[J].Appl.Phys.Lett.,2011 99(22):221103-1-3.

        [20]Kuo Y K,Chang JY,TsaiM C.Enhancement in hole-injection efficiency of blue InGaN light-emitting diodes from reduced polarization by some specific designs for the electron blocking layer[J].Opt.Lett.,2010,35(19):3285-3287.

        [21]Xia C S,Z.M.Simon Li,Lu W,etal.Efficiency enhancementof blue InGaN/GaN light-emitting diodeswith an AlGaNGaN-AlGaN electron blocking layer[J].J.Appl.Phys.,2012,111(9):094503-1-3.

        [22]Zhao F,Zhang Y Y,Song JJ,etal.High internal quantum efficiency blue lightemitting diodeswith triangular shaped In-GaN/GaN multiple quantum Wells[J].Chin.J.Lumin.(發(fā)光學報),2013,34(1):66-72(in English).

        [23]Chichibu SF,Abare A C,Minsky M S,et al.Effective band gap inhomogeneity and piezoelectric field in InGaN/GaN multiquantum well structures[J].Appl.Phys.Lett.,1998,73(14):2006-1-3.

        [24]Kuokstis E,Yang JW,Simin G,et al.Twomechanisms of blueshift of edge emission in InGaN-based epilayers and multiple quantum wells[J].Appl.Phys.Lett.,2002,80(6):977-1-3.

        [25]Wang CH,Ke CC,Lee C Y,et al.Hole injection and efficiency droop improvement in InGaN/GaN light-emitting diodes by band-engineered electron blocking layer[J].Appl.Phys.Lett.,2010,97(26):261103-1-3.

        猜你喜歡
        學報
        《北京航空航天大學學報》征稿簡則
        《北京航空航天大學學報》征稿簡則
        歡迎訂閱《西北農(nóng)林科技大學學報(自然科學版)》
        《北京航空航天大學學報》征稿簡則
        致敬學報40年
        《北京航空航天大學學報》征稿簡則
        學報簡介
        學報簡介
        《深空探測學報》
        Effects of Experimental Conditions on The Morphology and Photocurrent Density of TiO2 Nanorods
        小12箩利洗澡无码视频网站| 99久久99久久久精品蜜桃| 精品国产精品久久一区免费式 | 一区二区三区国产精品麻豆| 国产一区二区三区四色av| 永久免费人禽av在线观看 | 亚洲中文久久精品无码ww16| 国产精彩刺激对白视频| 亚洲自偷自拍另类第一页 | 免费在线国产不卡视频 | 无套内谢的新婚少妇国语播放 | 亚洲欧美香港在线观看三级片 | 成人国产精品三上悠亚久久 | 久久久久久久综合狠狠综合 | 亚洲国产精品天堂久久久| 亚洲一区二区三区日本久久九| 午夜免费视频| 色欲av亚洲一区无码少妇| 国产av一区二区三区区别| 精品久久一区二区av| 国产精品日韩经典中文字幕| 亚洲av无码片vr一区二区三区| 国产又色又爽无遮挡免费| chinese国产在线视频| 国产乱老熟视频乱老熟女1| 成人久久久精品乱码一区二区三区| 最近中文字幕国语免费| 老熟妇乱子伦av| 日本高清色惰www在线视频| 精品国产3p一区二区三区| 精品人妻va一区二区三区| 国精产品一区一区三区有限公司杨| 狠狠躁夜夜躁无码中文字幕| 久久人妻av不卡中文字幕| 国产丝袜美腿在线播放| 国内揄拍国内精品少妇| 久久精品国产亚洲精品| 亚洲AV专区一专区二专区三| 日本中文字幕乱码中文乱码| 色欲网天天无码av| 久久久久亚洲av无码专区桃色|