Enhancement of fluorescence emission and signal gain at 1.53 µm in Er3+/Ce3+ co-doped tellurite glass fiber

Feng-jing Yang , Bo Huang , Li-bo Wu , Ya-wei Qi , Sheng-xi Peng , Jun Li , Ya-xun Zhou

Optoelectronics Letters ›› 2015, Vol. 11 ›› Issue (5) : 361 -365.

PDF
Optoelectronics Letters ›› 2015, Vol. 11 ›› Issue (5) :361 -365. DOI: 10.1007/s11801-015-5111-1
Article
research-article
Enhancement of fluorescence emission and signal gain at 1.53 µm in Er3+/Ce3+ co-doped tellurite glass fiber
Author information +
History +
PDF

Abstract

Er3+/Ce3+ co-doped tellurite glasses with composition of TeO2-GeO2-Li2O-Nb2O5 were prepared using conventional melt-quenching technique for potential applications in Er3+-doped fiber amplifier (EDFA). The absorption spectra, up-conversion spectra and 1.53 µm band fluorescence spectra of glass samples were measured. It is shown that the 1.53 µm band fluorescence emission intensity of Er3+-doped tellurite glass fiber is improved obviously with the introduction of an appropriate amount of Ce3+, which is attributed to the energy transfer (ET) from Er3+ to Ce3+. Meanwhile, the 1.53 µm band optical signal amplification is simulated based on the rate and power propagation equations, and an increment in signal gain of about 2.4 dB at 1 532 nm in the Er3+/Ce3+ co-doped tellurite glass fiber is found. The maximum signal gain reaches 29.3 dB on a 50 cm-long fiber pumped at 980 nm with power of 100 mW. The results indicate that the prepared Er3+/Ce3+ co-doped tellurite glass is a good gain medium applied for 1.53 µm broadband and high-gain EDFA.

Keywords

Glass Sample / Amplify Spontaneous Emission / Excited State Absorption / Tellurite Glass / Radiative Transition Probability

Cite this article

Download citation ▾
Feng-jing Yang, Bo Huang, Li-bo Wu, Ya-wei Qi, Sheng-xi Peng, Jun Li, Ya-xun Zhou. Enhancement of fluorescence emission and signal gain at 1.53 µm in Er3+/Ce3+ co-doped tellurite glass fiber. Optoelectronics Letters, 2015, 11(5): 361-365 DOI:10.1007/s11801-015-5111-1

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Sajna M. S., Thomas S., Mary K. A. A., Joseph C., Biju P. R., Unnikrishnan N. V.. Journal of Luminescence. 2015, 159: 55

[2]

Hu Y., Jiang S., Sorbello G., Luo T., Ding Y., Hwang B. C., Peyghambarian N.. Journal of the Optical Society of America B-Optical Physics. 2001, 18: 1928

[3]

Çelikbilek M., Ersundu A. E., Zayim E.O., Aydin S.. Journal of Alloys and Compounds. 2015, 637: 162

[4]

Zhang W. J., Lin J., Cheng M. Z., Zhang S., Jia Y. J., Zhao J. H.. Journal of Quantitative Spectroscopy and Radiative Transfer. 2015, 159: 39

[5]

Anthony R., Lahiri R., Biswas S.. Microwave and Optical Technology Letters. 2014, 125: 2463

[6]

Pandey A., Som S., Kumar V., Kumar V., Kumar K., Rai V. K., Swart H. C.. Sensors and Actuators B-Chemical. 2014, 202: 1305

[7]

Zheng S. C., Qi Y. W., Peng S. X., Yin D. D., Zhou Y. X., Dai S. X.. Optoelectronics Letters. 2013, 9: 461

[8]

Dantelle G., Mortier M., Vivien D., Patriarche G.. Optical Materials. 2006, 28: 638

[9]

Sasikala T., Moorthy L. R., Pavani K., Chengaiah T.. Journal of Alloys and Compounds. 2012, 542: 271

[10]

Judd B. R.. Physical Review. 1992, 127: 750

[11]

Ofelt G. S.. Journal of Chemical Physics. 1962, 37: 511

[12]

Dousti M. R., Amjad R. J., Mahraz Z. A. S.. Journal of Molecular Structure. 2015, 1079: 347

[13]

Wang P. Y., Xia H. P., Peng J. T., Hu H. Y., Tang L., Zhang Y. P., Chen B. J., Jiang H. J.. Optoelectronics Letters. 2013, 9: 285

[14]

Khan G. R.. Optical Fiber Technology. 2012, 18: 421

[15]

Zhou Y. X., Yin D. D., Zheng S. C., Xu X. C.. Journal of Quantitative Spectroscopy and Radiative Transfer. 2013, 129: 1

[16]

McCumber D. E.. Physical Review. 1964, 136: 954

PDF

116

Accesses

0

Citation

Detail

Sections
Recommended

/