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Progress in Chemistry 2013, Vol. 25 Issue (12): 2068-2079 DOI: 10.7536/PC130541 Previous Articles   Next Articles

• Review •

Single-Phased White Phosphor for White Light Emitting Diodes

Liu Jie, Jiang Man, Mei Yongmei, Wu Zhanchao*, Kuang Shaoping*   

  1. College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, China
  • Received: Revised: Online: Published:
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White light emitting diodes (WLEDs) are described as the new generation illuminate lamps and have already been used widely in many areas. Single-phased white phosphors excited by ultraviolet-near-ultraviolet (NUV) for WLEDs has become a hot topic in light-conversion materials for their distinctive advantages. Research and development of single-phased white phosphors for WLEDs is of great significance. In this paper, the research progress on single-phased white phosphors both at home and abroad is reviewed comprehensively. The methods to obtain the single-phased white phosphors are introduced. First, some rare earth ions, such as Eu2+, Eu3+ and Ce3+, can offer the possibility of simultaneous emission in the blue, green, orange and red wavelengths in different crystalline hosts. The second method is the combination of the intrinsic host emission (VO43-, MoO42-, or WO42-) band with the emission of rare earth ions. The third method is based on the energy transfer between different activators in some hosts. Then the mono ion doped single-phased white phosphors, including Eu2+-, Eu3+-, Ce3+-, Dy3+-, Sm3+-activated phosphors, are presented in detail. Works on Eu2+/Mn2+, Eu2+/Ce3+, Ce3+/Mn2+, Tm3+/Dy3+, Eu3+/Dy3+-coactivated single-phased white phosphors are also summarized. In addition, multiple ions-coactivated single-phased white phosphors are reviewed. The photoluminescence spectra and their tunable mechanism of relevant silicate, chlorosilicate, phosphate, borate, aluminate, etc. are described briefly. Moreover, the current problems existing in this field are pointed out and a brief prospect is provided.

Contents
1 Introduction
2 Research of single-phased white phosphors (SPWP)
2.1 Mono ion doped SPWP
2.2 Eu2+/Mn2+-coactivated SPWP
2.3 Eu2+/Ce3+-coactivated SPWP
2.4 Ce3+/Mn2+-coactivated SPWP
2.5 Tm3+/Dy3+-coactivated SPWP
2.6 Eu3+/Dy3+-coactivated SPWP
2.7 Multiple ions-coactivated SPWP
2.8 Other white phosphors
3 Conclusions and outlook

CLC Number: 

[1] 徐叙瑢(Xu X R), 苏勉增(Su M Z). 发光学与发光材料(Luminescence and Luminescence Materials), 北京: 化学工业出版社(Beijing: Chemical Industry Press). 2004
[2] Steele R V. Nature Photonics, 2007, 1(1): 25—26
[3] 徐修冬(Xu X D), 许贵真(Xu G Z), 吴占超(Wu Z C), 汪正良(Wang Z L), 龚孟濂(Gong M L). 中山大学学报(自然科学版)(Acta Scientiarum Naturalium Universitatis Sunyatseni), 2007, (5): 124—128
[4] Nakamura S, Fasol G. The Blue Laser Diode. Berlin: Spinger-Verlag, 1997. 1—24
[5] Kuo C H, Sheu J K, Chang S J, Su Y K, Wu L W, Tsai J M, Liu C H, Wu R K. Jpn. Appl. Phys. Part 1, 2003, 42: 2284—2287
[6] Zhang L, Han P D, Han Y, Lu Z, Yang H, Wang L X, Zhang Q T. J. Alloy. Comp., 2013, 558: 229—235
[7] Roh H S, Hur S, Song H J, Park I J, Yim D K, Kim D W, Hong K S. Mater. Lett., 2012, 70: 37—39
[8] 杨志平(Yang Z P), 刘玉峰(Liu Y F), 王利伟(Wang L W), 余泉茂(Yu Q M), 熊志军(Xiong Z J), 徐小岭(Xu X L). 物理学报(Acta Phys. Sin. ), 2007, 56(1): 546—550
[9] Kim J S, Jeon P E, Choi J C, Park H L, Mho S I, Kim G C. Appl. Phys. Lett., 2004, 84: 2931—2933
[10] Li G G, Geng D L, Shang M M, Peng C, Cheng Z Y, Lin J. J. Mater. Chem., 2011, 21: 13334—13344
[11] Yu X, Xu X H, Jiang T M, Yu H L, Yang P H, Jiao Q, Qiu J B. Mater. Chem. Phys., 2013, 139(1): 314—318
[12] Xie N, Liu J Y, Huang Y L, Kim S I, Seo H J. Ceram. Inter., 2012, 38(2): 1489—1495
[13] Srivastava A M, Duggal A R. US 6255670-B1
[14] Kim J S, Jeon P E, Park Y H, Choi J C, Park H L, Kim G C, Kim T W. Appl. Phys. Lett., 2004, 85: 3696—3698
[15] Kim J S, Kang J Y, Jeon P E, Choi J C, Park H L, Kim T W. Jpn. J. Appl. Phys., Part 1, 2004, 43(3): 989—992
[16] Kim J S, Jeon P E, Choi J C, Park H L. Solid. State. Commun., 2005, 133: 187—190
[17] 孙晓园(Sun X Y), 张家骅(Zhang J H), 张霞(Zhang X), 刘慎薪(Liu S X), 蒋大鹏(Jiang D P), 王笑军(Wang X J). 发光学报(Chin. J. Lumin. ), 2005, 26(3): 404—406
[18] Sun X Y, Zhang J H, Zhang X, Lu S Z, Wang X J. J. Lumin., 2007, 122/123: 955—957
[19] Han J Y, Im W B, Kim D, Cheong S H, Lee G, Jeon D Y. J. Mater. Chem., 2012, 22: 5374—5381
[20] He H, Fu R L, Song X F, Wang D L, Chen J K. J. Lumin., 2008, 128(3): 489—493
[21] Ye X Y, Yang Y M, Liao C F, Yang F L. J. Rare. Earths., 2011, 29(11): 1026—1028
[22] Li Y Z, Wang Y H, Wang Z F, Xu X H, Li Y Q, Gong Y. J. Electrochem. Soc., 2010, 157: J271—J274
[23] Wu Z C, Gong M L, Shi J X, Wang G, Su Q. Chem. Lett., 2007, 36(3): 410—411
[24] Wu Z C, Liu J, Gong M L. Chem. Phys. Lett., 2008, 466(1/3): 88—90
[25] Wu Z C, Liu J, Hou W G, Xu J, Gong M L. J. Alloy. Comp., 2010, 798: 139—142
[26] Ryu J H, Yoon J W, Shim K B. Electrochem. Solid-State Lett., 2005, 8(5): D15—D18
[27] Ryu J H, Koo S M, Yoon J W, Lim C S, Shim K B. Mater. Lett., 2006, 60: 1702—1705
[28] Setlur A A, Comanzo H A, Srivastava A M, Beers W W. J. Electrochem. Soc., 2005, 152(12): H205—H208
[29] Chen X P, Xiao F, Ye S, Huang X Y, Dong G P, Zhang Q Y. J. Alloy. Comp., 2011, 509(5): 1355—1359
[30] Liu X M, Lin C K, Lin J. Appl. Phys. Lett., 2007, 90: art. no. 081904
[31] Liu X M, Li C X, Quan Z W, Cheng Z Y, Lin J. J. Phys. Chem. C, 2007, 111: 16601—16607
[32] Guo C F, Ding X, Xu Y. J. Am. Ceram. Soc., 2010, 93(6): 1708—1713
[33] Liang C H, Chang Y C, Chang Y S. Appl. Phys. Lett., 2008, 93: art. no. 211902
[34] Hao Z D, Zhang J H, Zhang X, Wang X J. Opt. Mater., 2011, 33(3): 355—358
[35] Yu M, Lin J, Zhang H J, Yan Y C. J. Mater. Chem., 2003, 13: 1413—1419
[36] Xin S Y, Wang Y H, Zhu G, Zhang F, Gong Y, Wen Y, Liu B T. Mater. Res. Bull., 2013, 48(4): 1627—1631
[37] Kuang J, Liu Y, Zhang J. J. Solid State Chem., 2006, 179: 266—269
[38] Diaz-Torres L A, De la Rosa E, Salas P, Romero V H, Angeles-Chávez C. J. Solid State Chem., 2008, 181: 75—80
[39] Shi Y, Wang Y, Yang Z. J. Alloy. Compd., 2011, 509: 3128—3131
[40] Jayasankar C K, Venkatramu V, Babu S S, Babu P. J. Alloy. Compd., 2004, 374: 22—26
[41] Li L L, Zi W W, Li G H, Lan S, Ji G J, Gan S C, Zou H F, Xu X C. J. Solid State Chem., 2012, 191: 175—180
[42] Zhang Z W, Sun X Y, Liu L, Peng Y S, Shen X H, Zhang W G, Wang D J. Ceram. Inter., 2013, 39: 1723—1728
[43] 杨志平(Yang Z P), 刘鹏飞(Liu P F), 宋延春(Song Y C), 韩月(Han Y), 赵引红(Zhao Y H), 周东站(Zhou D Z). 中国稀土学报(J. Chin. Soc. Rare Earths), 2012, 30: 570—573
[44] 杨志平(Yang Z P), 宋延春(Song Y C), 韩月(Han Y), 赵青(Zhao Q), 潘飞(Pan F). 功能材料(Func. Mater. ), 2012, 43: 1692—1695
[45] Ratnam B V, Jayasimhadri M, Jang K, Lee H S. J. Am. Ceram. Soc., 2010, 93: 3857—3861
[46] Liang Y J, Liu M Y, Yang F, Wu X Y, Yang W L, Li X J. J. Inorg. Organomet. Polym., DOI 10.1007/s10904-013-9833-x
[47] 姚光庆(Yao G Q), 张亮(Zhang L), 苏勉曾(Su M Z). 高等学校化学学报(Chem. J. Chin. Univ. ), 1997, 18: 1—5
[48] Park K, Choi N, Kim J, Kung P, Kim S M. Solid State Commun., 2010, 150: 329—332
[49] 夏威(Xia W), 王细凤(Wang X F). 材料导报(Mater. Rev.), 2007, 21(8): 158—158
[50] Kim J S, Kwon A K, Park Y H, Choi J C, Park H L, Kim G C. J. Lumin., 2007, 122/123: 583—586
[51] 李雪征(Li X Z), 王达健(Wang D J), 顾铁成(Gu T C), 毛智勇(Mao Z Y), 刘艳花(Liu Y H). 发光学报(Chin. J. Lumin. ), 2008, 29: 989—995
[52] 毛智勇(Mao Z Y), 王达健(Wang D J), 马亮(Ma L), 陆启飞(Lu Q F), 刘凌云(Liu L Y), 李雪征(Li X Z), 刘艳花(Liu Y H). 天津理工大学学报(J. Tianjin Univ. Tech.), 2008, 24: 9—12
[53] Wang J, Wang D J, Li L, Meng Y S, Zhang N, Li G M. Chin. J. Lumin., 2006, 27: 463—468
[54] Wang D J, Wang J L, Li L. Chin. Phys. Lett., 2006, 23: 2247—2250
[55] Wang D J, Liu L Y. Electrochem. Solid-State Lett., 2009, 12: H179—H182
[56] Liu Y H, Mao Z Y, Yu W H, Lu Q F, Wang D J. J. Alloy. Comp., 2010, 493: 406—409
[57] Yang W J, Luo L Y, Chen T M, Wang N S. Chem. Mater., 2005, 17: 3883—3888
[58] 杨志平(Yang Z P), 刘玉峰(Liu Y F), 熊志军(Xiong Z J), 徐小岭(Xu X L), 李盼来(Li P L). 硅酸盐学报(J. Chin. Ceram. Soc. ), 2006, 34(10): 1195—1198
[59] Choi N S, Park K W, Park B W, Zhang X M, Kim J S, Kung P, Kim S M. J. Lumin., 2010, 130: 560—566
[60] Guo M Q, Huang L H, Zhao S L, Deng D G, Wang H P, Hua Y J, Jia G H, Xu S Q. Ceram. Inter., 2012, 38: 5571—5574
[61] Yang C T, Xie L J, Xiao Q L, Liu G X, Peng W F, Neng J X. J. Rare Earths, 2012, 30: 110—113
[62] Chang C K, Chen T M. Appl. Phys. Lett., 2007, 90: art. no. 161901
[63] Lee S H, Park J K, Son S M, Kim J S, Park H L. Appl. Phys. Lett., 2006, 89: art. no. 221916
[64] Ding W J, Wang J, Liu Z M, Zhang M, Su Q, Tang J K. J. Electrochem. Soc., 2008, 155: J122—J127
[65] 杨志平(Yang Z P), 刘玉峰(Liu Y F), 李雪清(Li X Q). 发光学报(Chin. J. Lumin. ), 2006, 27(4): 629—632
[66] 杨志平(Yang Z P), 赵方亮(Zhao F L), 李盼来(Li P L), 路亚娟(Lu Y J), 李小宁(Li X N). 中国稀土学报(J. Chin. Rare Earth Soc.), 2009, 27(4): 506—509
[67] Shen C Y, Yang Y, Jin S Z. Light-Emitting Diode Materials and Devices Ⅱ. Proceedings of the SPIE, 2007, 6828: 682815, doi: 10.1117/12.754905
[68] Lü W, Hao Z D, Zhang X, Liu X Y, Wang X J, Zhang J H. Opt. Mater., 2011, 33: 1262—1265
[69] Huang C H, Chan T S, Liu W R, Wang D Y, Chiu Y C, Yeh Y T, Chen T M. J. Mater. Chem., 2012, 22: 20210—20216
[70] Yang W J, Chen T M. Appl. Phys. Lett., 2006, 88: art. no. 1019031
[71] Guo N, Huang Y J, You H P, Yang M, Song Y H, Liu K, Zheng Y H. Inorg. Chem., 2010, 49: 10907—10913
[72] Guo N, You H P, Song Y H, Yang M, Liu K, Zheng Y H, Huang Y J, Zhang H J. J. Mater. Chem., 2010, 20: 9061—9067
[73] Huang C H, Wu P J, Lee J F, Chen T M. J. Mater. Chem., 2011, 21: 10489—10495
[74] Liu W R, Huang C H, Yeh C W, Tsai J C, Chiu Y C, Yeh Y T, Liu R S. Inorg. Chem., 2012, 51: 9636—9641
[75] Guo N, Huang Y H, Yang M, Song Y H, Zheng Y H, You H P. Phys. Chem. Chem. Phys., 2011, 13: 15077—15082
[76] Guo N, Zheng Y H, Jia Y C, Qiao H, You H P. New J. Chem., 2012, 36: 168—172
[77] Xiao F, Xue Y N, Pan Y X, Zhang Q Y. Spectrochim. Acta A, 2010, 77: 638—642
[78] Choi S, Yun Y J, Jung H K. Mater. Lett., 2012, 75: 186—188
[79] Song E H, Zhao W R, Zhou G X, Dou X H, Ming H C, Yi C Y. Curr. Appl. Phys., 2011, 11: 1374—1378
[80] Guo C, Luan L, Ding X, Zhang F, Shi F G, Gao F, Liang L. Appl. Phys. B, 2009, 95: 779—785
[81] 舒万艮(Shu W G), 郑灵芝(Zheng L Z), 周忠诚(Zhou Z C). 稀土(Rare Earth), 2002, 23: 77—79
[82] Xiao F, Xue Y N, Ma Y Y, Zhang Q Y. Phys. B, 2010, 405: 891—895
[83] Yuan S L, Chen X L, Zhu C F, Yang Y X, Chen G R. Opt. Mater., 2007, 30: 192—194
[84] Li P L, Wang Z J, Yang Z P, Guo Q L. J. Electrochem. Soc., 2010, 157: H504—H509
[85] Lan Y W, Yi L D, Zhou L Y, Tong Z F, Gong F Z, Wang R F. Physica B, 2010, 405: 3489—3491
[86] 张晓明(Zhang X M), 朱月华(Zhu Y H), 王海波(Wang H B), 井艳军(Jing Y J). 材料导报(Mater. Rev. ), 2008, 22: 270—273
[87] Won Y H, Jang H S, Im W B, Jeon D Y, Lee J S. Appl. Phys. Lett., 2006, 89: art. no. 231909
[88] Shen C Y, Yang Y, Jin S Z, Feng H J. Opt. Int. J. Light Electron. Opt., 2010, 121: 29—32
[89] Xu X H, Yu X, Zhou D C, Qiu J B. Mater. Res. Bull., 2013, 48: 2390—2392
[90] Zhang X L, He H, Li Z S, Yu T, Zou Z G. J. Lumin., 2008, 128(12): 1876—1879
[91] He H, Fu R L, Cao Y G, Song X F, Pan Z W, Zhao X R, Xiao Q B, Li R. Opt. Mater., 2010, 32: 632—636
[92] Chen L, Luo A Q, Zhang Y, Liu F Y, Jiang Y, Xu Q S, Chen X H, Hu Q Z, Chen S F, Chen K J, Kuo H C. ACS Comb. Sci., 2012, 14: 636—644
[93] Lv W Z, Guo N, Jia Y C, Zhao Q, You H P. Opt. Mater., 2013, 35: 1013—1018
[94] Ju H D, Wang L, Wang B L, Ma Y H, Wang H, Chen S B, Tao X T. Ceram. Inter., 2013, 39: 8001—8005
[95] Sivakumar V, Varadaraju V. J. Electrochem. Soc., 2009, 156: J179—J184
[96] Chang C K, Chen T M. Appl. Phys. Lett., 2007, 91: art. no. 081902
[97] Wang Z J, Li P L, Yang Z P, Guo Q L, Fu G S. Chin. Phys. Lett., 2009, 26: art. no. 117802
[98] Li P L, Wang Z J, Yang Z P, Guo Q L. J. Rare Earths, 2010, 28: 523—525
[99] Wang Q, Deng D G, Hua Y J, Huang L H, Wang H P, Zhao S L, Jia G H, Li C X, Xu S Q. J. Lumin., 2012, 132: 434—438
[100] Guo C F, Luan L, Frank G S, Ding X. J. Electrochem. Soc., 2009, 156: J125—J128
[101] Xiao F, Xue Y N, Zhang Q Y. Phys. B, 2009, 404: 3743—3747
[102] 郭宇竹(Guo Y Z), 余锡宾(Yu X B), 刘洁(Liu J), 杨绪勇(Yang X Y). 上海师范大学学报(J. Shanghai Normal Univ.), 2009, 38: 628—633
[103] Song Y H, Jia G, Yang M, Huang Y J, You H P, Zhang H J. Appl. Phys. Lett., 2009, 94: art. no. 091902
[104] Guo C H, Luan L, Xu Y, Gao F, Liang L F. J. Electrochem. Soc., 2008, 155: J310—J313
[105] Sun J Y, Zeng J H, Sun Y N, Du H Y. J. Lumin., 2013, 138: 72—76
[106] Geng D L, Li G G, Shang M M, Yang D M, Zhang Y, Cheng Z Y, Lin J. J. Mater. Chem., 2012, 22: 14262—14271
[107] Li G G, Geng D L, Shang M M, Peng C, Cheng Z Y, Lin J. J. Mater. Chem., 2011, 21: 13334—13344
[108] Park K W, Lee J B, Kim T H, Kim J S, Kung P, Kim S M. Proc. SPIE, 2010, 7617: art. no. 76171L
[109] Mahalingam V, Vetrone F, Naccache R, Speghini A, Capobianco J A. Adv. Mater., 2009, 40: 4025—4028
[110] Yang P H, Yu X, Xu X H, Jiang T M, Yu H L, Zhou D P, Yang Z W, Song Z G, Qiu J B. J. Solid State Chem., 2013, 202: 143—148
[111] Yang F, Liang Y J, Liu M Y, Li X J, Wu X Y, Wang N. Optik, 2013, 124: 2004—2007
[112] Zhang Z W, Sun X Y, Jia D D, Song S T, Zhang J P, Wang S F. Ceram. Inter., 2013, 39: 3965—3970
[113] Das S, Reddy A A, Babu S S, Prakash G V. J. Mater. Sci., 2011, 46: 7770—7775
[114] Das S, Reddy A A, Prakash G V. Ceram. Inter., 2012, 38: 5769—5773
[115] Li G G, Zhang Y, Geng D L, Shang M M, Peng C, Cheng Z Y, Lin J. Appl. Mater. Interfaces, 2012, 4: 296—305
[116] Lü W, Guo N, Jia Y C, Zhao Q, Lv W Z, Jiao M M, Shao B Q, You H P. Inorg. Chem., 2013, 52: 3007—3012
[117] Huang C H, Chen T M. J. Phys. Chem. C, 2011, 115: 2349—2355
[118] Lü W, Hao Z D, Zhang X, Luo Y S, Wang X J, Zhang J H. Inorg. Chem., 2011, 50: 7846—7851
[119] Liu W R, Huang C H, Yeh C W, Chiu Y C, Yeh Y T, Liu R S. RSC Advances, 2013, 3: 9023—9028
[120] Zhu G, Xin S Y, Wen Y, Wang Q, Que M D, Wang Y H. RSC Advances, 2013, 3: 9311—9318
[121] Ma W B, Shi Z P, Wang R. J. Alloy. Comp., 2010, 503: 118—121
[122] Wu L, Zhang Y, Gui M Y, Lu P Z, Zhao L X, Tian S, Kong Y F, Xu J J. J. Mater. Chem., 2012, 22: 6463—6470
[123] Yang P H, Yu X, Yu H L, Jiang T M, Xu X H, Yang Z W, Zhou D C, Song Z G, Yang Y, Zhao Z Y, Qiu J B. J. Lumin., 2013, 135: 206—210
[124] Yu X, Xu X H, Jiang T M, Yu H L, Yang P H, Jiao Q, Qiu J B. Mater. Chem. Phys., 2013, 139: 314—318
[125] Chen X, Zhao J F, Yu L P, Rong C Y, Li C Z, Lian S X. J. Lumin., 2011, 131: 2697—2702
[126] Zhao W Y, An S L, Fan B, Li S B. J. Alloy. Comp., 2013, 566: 142—146
[127] Kim J S, Kim T W, Kim T W, Park H L, Kim Y G, Chang S K, Han S D. Solid State Commun., 2004, 131: 493—497
[128] Xiao F, Xue Y N, Zhang Q Y. Spectrochim. Acta A, 2009, 74: 498—501
[129] Sun J Y, Zhu J C, Zhang X Y, Xia Z G, Du H Y. J. Lumin., 2012, 132: 2937—2942
[130] Glorieux B, Jubera V, Orlova A I, Kanunov A E, Garcia A, Pallier C, Oleneva T A. J. Inorg. Mater., 2013, 49: 82—88
[131] Liu X L, Liu Y X, Yan D T, Zhu H C, Liu C G, Xu C S, Liu Y C, Wang X J. J. Mater. Chem., 2012, 22: 16839—16843

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