Direct White Light Nanophosphors

Article Preview

Abstract:

White light emission based on semiconductor nanostructures represents a new technology platform for solid state lighting. The major advantages are the easy synthesis and tuning of color emission in the visible range and the high optical stability of nanostructures. This chapter summarizes the materials that can be used as white light nanophosphors.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

219-228

Citation:

Online since:

July 2010

Authors:

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2010 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] A. Bergh, G. Crawford, A. Duggal and R. Haitz: Physics Today Vol. 54 (2001), p.42 (No. 12).

Google Scholar

[2] E. F. Schubert and J. K. Kim: Science Vol. 308 (2005), p.1274.

Google Scholar

[3] S. Nakamura and G. Fasol, The Blue Laser Diode (Berlin Springer 1997).

Google Scholar

[4] Y. Terai, S. Kuroda, K. Takita, T. Okuno and Y. Matsumoto: Appl. Phys. Lett. Vol. 73 (1998), p.3757.

Google Scholar

[5] A. Beyer, O. Leoifeld, E. Muller, S. Stutz, H. Sigg and D. Grutzmacher: Thin Solid Films Vol. 380 (2000), p.246.

Google Scholar

[6] R. -J. Xie and N. Hirosaki: Science and Technology: Adv. Mater. Vol. 8 (2007), p.588.

Google Scholar

[7] Y. Li, A. Rizzo, R. Cingolani and G. Gigli: Microchimica Acta Vol. 159 (2007), p.207.

Google Scholar

[8] F. K. Yam and Z. Hassan: Microelectron J. Vol. 36 (2005), p.129.

Google Scholar

[9] Y. Peng and S. Miyazak: Nanoscience Vol. 11 (2006), p.293.

Google Scholar

[10] R. Mueller-Mach, G. Mueller, M. R. Krames, H. A. Höppe, F. Stadler, W. Schnick, T. Juestel and P. Schmidt: Phys. Stat. Solid A Vol. 202 (2005), p.1727.

DOI: 10.1002/pssa.200520045

Google Scholar

[11] H. Chander: Materials Science and Engineering Vol. R49 (2005), p.113.

Google Scholar

[12] K. K. Nanda, F. E. Kruis and H. Fissan: NanoLett. Vol. 1 (2001), p.605.

Google Scholar

[13] A. Joshi, K. Y. Narsingi, M. O. Manasreh, E. A. Davis and B. D. Weaver: Appl. Phys. Lett. Vol. 89 (2006), p.131907.

Google Scholar

[14] M. J. Bowers II, J. R. McBride and S. J. Rosenthal: J. Am. Chem. Soc. Vol. 127 (2005), p.15378.

Google Scholar

[15] Z. Tang, N. A. Kotov anmd M. Giersig: Science Vol. 297 (2002), p.237.

Google Scholar

[16] R. N. Bhargava, D. Gallagher, X. Hong and A. Nurmikko: Phys. Rev. Lett. 72 (1994), 416.

Google Scholar

[17] I. Shalish, H. Temkin and V. Narayanamurti: Phys. Rev. B Vol. 69 (2004) p.245401.

Google Scholar

[18] M. A. Schreuder, J. D. Gosnell, N. J. Smith, M. R. Warnement, S. M. Weiss and S. J. Rosenthal: J. Mater. Chem. Vol. 18 (2008), p.970.

Google Scholar

[19] A. B. Djurisic, Y. H. Leung, K. H. Tam, L. Ding, W. K. Ge, H. Y. Chen and S. Gwo: Appl. Phys. Lett. Vol. 88 (2006), p.103107.

Google Scholar

[20] H. Q. Wang, G. Z. Wang, L. C. Jia, C. J. Tang and G. H. Li, J. Phys. D: Appl. Phys. Vol. 40 (2007), p.6549.

Google Scholar

[21] X. M. Sui, C. L. Shao and Y. C. Liu: Appl. Phys. Lett. Vol. 87 (2005), p.113115.

Google Scholar

[22] A. Wei, X. W. Sun, C. X. Xu, Z. L. Dong, Y. Yang, S. T. Tan and W. Huang, Nanotechnology Vol. 17 (2006), p.1740.

Google Scholar

[23] F. A. Kroger: The Chemistry of Imperfect Crystals (Amsterdam: North-Holland, 1964) p.691.

Google Scholar

[24] E. G. Bylander, J. Appl. Phys. Vol. 49 (1978) p.1188.

Google Scholar

[25] M. Ogita, N. Saika, Y. Nakanishi and Y. Hatanaka: Appl. Surf. Sci. Vol. 142 (1999), p.188.

Google Scholar

[26] Z. Li, C. De Groot and J. H. Moodera: Appl. Phys. Lett. Vol. 77 (2000), p.3630.

Google Scholar

[27] T. Chen and K. Tang: Appl. Phys. Lett. Vol. 90 (2007), p.053104.

Google Scholar

[28] H. M. Lam, M. H. Hong, S. Yuan and T. C. Chong: Appl. Phys. A Vol. 79 (2004), p. (2099).

Google Scholar

[29] J. Zhang, F. Jiang and L. Zhang: Phy . Lett. A Vol. 322 (2004), p.363.

Google Scholar

[30] C. H. Liang, G. W. Meng, G. Z. Wang, Y. W. Wang, L. D. Zhang and S. Zhang: Appl. Phys. Lett. Vol. 78 (2001), p.3202.

Google Scholar

[31] K. W. Chang and J. J. Wu: Adv. Mater. Vol. 16 (2004), p.545.

Google Scholar

[32] Y. P. Song, H. Z. Zhang, C. Lin, Y. W. Zhu, G. H. Li, F. H. Yang and D. P. Yu: Phy. Rev. B Vol. 69 (2004), 075304.

Google Scholar

[33] H. W. Kim and N. H. Kim: Appl. Phys. A 80 (2005), 537.

Google Scholar

[34] H. Z. Zhang, Y. C. Kong, Y. Z. Wang, X. Du, Z. G. Bai, J. J. Wang, D. P. Yu, Y. Ding, Q. L. Hang and S. Q. Feng: Solid State Commun. 109 (1999), 677.

DOI: 10.1016/s0038-1098(99)00015-0

Google Scholar

[35] S. C. Vanithakumari and K. K. Nanda: Adv. Mater. Vol. 21 (2009), p.3581.

Google Scholar

[36] A. Nag and D. D. Sarma: J. Phys. Chem. C Vol. 111 (2007), p.13641.

Google Scholar

[37] K. K. Nanda, S. N. Sarangi and S. N. Sahu: J. Phys. D: Appl. Phys. Vol. 32 (1999), p.2306.

Google Scholar

[38] S. Sapra, S. Mayilo, T. A. Klar, A. L. Rogach and J. Feldmann: Adv. Mater. Vol. 19 (2007), p.569.

DOI: 10.1002/adma.200602267

Google Scholar

[39] A. A. Khosravi, M. Kundu, B. A. Kuruvilla, G. S. Shekhawat, R. P. Gupta, A. K. Sharma, P. D. Vyas and S. K. Kulkarni: Appl. Phys. Lett. Vol. 67 (1995), p.2506.

DOI: 10.1063/1.114440

Google Scholar

[40] S. Sapra, A. Prakash, A. Ghangrekar, N. Periasamy and D. D. Sarma: J. Phys. Chem. B Vol. 109 (2005), p.1663.

Google Scholar

[41] A. A. Khosravi, M. Kundu, L. Jatwa, S. K. Deshpande, U. A. Bhagwat, M. Sastry and S. K. Kulkarni: Appl. Phys. Lett. Vol. 67 (1995), p.2702.

DOI: 10.1063/1.114298

Google Scholar

[42] N. Karar, H. Chander, and S. M. Shivaprasad: Appl. Phys. Lett. Vol. 85 (2004), p.5058.

Google Scholar

[43] S. Kar and S. Biswas: J. Phys. Chem. C Vol. 112 (2008), p.11144.

Google Scholar

[44] P. Yang and M. Bredol: Res. Lett. Mater. Sci. Vol. 2008 (2008), p.506065.

Google Scholar

[45] S. Chawla, K. Jayanthi, and H. Chander, Phys. Stat. Sol. (a) Vol. 205 (2008), p.271.

Google Scholar

[46] S. Lee, W. J. Cho, I. K. Han, W. J. Choi and J. I. Lee: Phys. Status Solidi (b) Vol. 241 (2008), p.2767.

Google Scholar

[47] T. Uchino and T. Yamada: Appl. Phys. Lett. Vol. 85 (2004), p.1164.

Google Scholar

[48] W. H. Green, K. P. Le, J. Grey, T. T. Au and M. J. Sailor: Science Vol. 276 (1997), p.1826.

Google Scholar

[49] H. S. Chen, S. J. J. Wang, C. J. Lo and J. Y. Chi: Appl. Phys. Lett. Vol. 86 (2005), p.131905.

Google Scholar

[50] X. Peng, M.C. Schlamp, A.V. Fadavanish and A.P. Alivisatos: J. Am. Chem. Soc. Vol. 119 (1997), p.7019.

Google Scholar

[51] Y.W. Cao and U. Banin: J. Am. Chem. Soc. 122 (2000) 9692.

Google Scholar

[52] D. Jiang, L. Cao, G. Su,W. Liu, H. Qu, Y. Sun, B. Dong: Mater. Chem. Phys. Vol. 115 (2009), p.795.

Google Scholar

[53] N. Karar, H. Chander and S. M. Shivaprasad: Appl. Phys. Lett. Vol. 85 (2004), p.5058.

Google Scholar

[54] B. O. Dabbousi, J. Rodriguez-Viejo, F. V. Mikulec, J. R. Heine, H. Mattoussi, R. Ober, K. F. Jensen and M. G. Bawendi: J. Phys. Chem. B Vol. 101 (1997), p.9463.

DOI: 10.1021/jp971091y

Google Scholar

[55] H. S. Zhou, H. Sasahara, I. Honma, H. Komiyama and J. W. Haus: Chem. Mater. Vol. 6 (1994), p.1534.

Google Scholar

[56] S. Nizamoglu, E. Mutlugun, T. Ozel, H. V. Demir, S. Sapra, N. Gaponik and A. Eychmuller: Appl. Phys. Lett. Vol. 92 (2008), p.113110.

DOI: 10.1109/leos.2008.4688841

Google Scholar

[57] H. V. Demir, S. Nizamoglu, E. Mutlugun, T. Ozel, S. Sapra, N. Gopnik and A. Eychmuller: Nanotechnology Vol. 19 (2008), p.335203.

Google Scholar

[58] Q. Y. Zhang, C. H. Yang and Y. X. Pan: Nanotechnology Vol. 18 (2007) p.145602.

Google Scholar

[59] B. F. Lei, Y. L. Liu, Z. R. Ye, C. S. Shi: Chin. Chem. Lett. Vol. 15 (2004), p, 335.

Google Scholar

[60] G. S. R. Raju, J. Y. Park, H. C. Jung, H. K. Yang, B. K. Moon, J. H. Jeong and J. H. Kim: Optical Materials Vol. 31 (2009), p.1210.

Google Scholar

[61] F. Xiao, Y.N. Xue and Q.Y. Zhang: Spectrochimica Acta Part A 74 (2009), p.498.

Google Scholar

[62] J. A. Gonzalez-Ortega, E. M. Tejeda, N. Perea, G. A. Hirata, E. J. Bosze and J. McKittrick: Optical Materials Vol. 27 (2005), p.1221.

DOI: 10.1016/j.optmat.2004.10.018

Google Scholar

[63] X. Sun, J. Zhang, X. Zhang, S. Lu, X. Wang: J. Lumin. Vol. 122-123 (2007) p.955.

Google Scholar