Subhabrata Bera
Rutgers University
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Subhabrata Bera.
Optics Express | 2016
Craig D. Nie; Subhabrata Bera; James A. Harrington
Single-crystal YAG (Y3Al5O12) fibers have been grown by the laser heated pedestal growth technique with losses as low as 0.3 dB/m at 1.06 μm. These YAG fibers are as long as about 60 cm with diameters around 330 μm. The early fibers were grown from unoriented YAG seed fibers and these fibers exhibited facet steps or ridges on the surface of the fiber. However, recently we have grown fibers using an oriented seed to grow step-free fibers. Scattering losses made on the fibers indicate that the scattering losses are equal to about 30% of the total loss.
Optics Express | 2016
Yuan Li; Keith Miller; Eric G. Johnson; Craig D. Nie; Subhabrata Bera; James A. Harrington; Ramesh K. Shori
Lasing was demonstrated for the first time at 2.09 μm in 0.5% Holmium (Ho) doped YAG single crystal fiber (SCF) fabricated using the Laser Heated Pedestal Growth (LHPG) method. Output power of 23.5 W with 67.5% optical-to-optical slope efficiency is, to the best of our knowledge, the highest output power achieved at 2 µm from a SCF fabricated using LHPG. With continued improvement in the quality of the SCF and better thermal management, output power of few 100s W and higher, especially in the 2 µm spectral region, is realizable in the very near future.
Solid State Lasers XXVII: Technology and Devices 2018 | 2018
Subhabrata Bera; Craig D. Nie; James A. Harrington; Long Cheng; Stephen C. Rand; Yuan Li; Eric G. Johnson
Rare-earth doped single crystal (SC) yttrium aluminum garnet (YAG) fibers have great potential as high-power laser gain media. SC fibers combine the superior material properties of crystals with the advantages of a fiber geometry. Improving processing techniques, growth of low-loss YAG SC fibers have been reported. A low-cost technique that allows for the growth of optical quality Ho:YAG single crystal (SC) fibers with different dopant concentrations have been developed and discussed. This technique is a low-cost sol-gel based method which offers greater flexibility in terms of dopant concentration. Self-segregation of Nd ions in YAG SC fibers have been observed. Such a phenomenon can be utilized to fabricate monolithic SC fibers with graded index.
Proceedings of SPIE | 2016
Subhabrata Bera; Craig D. Nie; James A. Harrington; Theresa F. Chick; Ayan Chakrabarty; Stephen Trembath-Reichert; James Chapman; Stephen C. Rand
Rare-earth doped single-crystal (SC) Yttrium Aluminum Garnet (YAG) fibers are excellent candidates for high power lasers. These SC fiber optics combine the favorable low Stimulated Brillouin Scattering (SBS) gain coefficient and excellent thermal properties to make them an attractive alternative to glass fiber lasers and amplifiers. Various rare-earth doped SC fibers have been grown using the laser heated pedestal growth (LHPG) technique. Several cladding methods, including in-situ and post-growth cladding techniques, are discussed in this paper. A rod-in-tube approach has been used by to grow a fiber with an Erbium doped SC YAG fiber core inserted in a SC YAG tube. The result is a radial gradient in the distribution of rare-earth ions. Post cladding methods include sol-gel deposited polycrystalline.
Proceedings of SPIE | 2015
Craig D. Nie; Subhabrata Bera; Jeffrey E. Melzer; James A. Harrington; Elizabeth F. C. Dreyer; Stephen C. Rand; Stephen Trembath-Reichert; Christopher Hoef
Single crystal (SC) yttrium aluminum garnet (YAG, Y3Al5O12) as a host material has the ability to be doped with high concentrations of Er3+ ions. We utilize this ability to grow a 50% Er3+ doped YAG SC fiber, which was inserted into a SC YAG tube. This rod-in-tube was used as a preform in our laser-heated pedestal growth (LHPG) apparatus to grow a fiber with a radial distribution of Er3+ ions. The work shows that there is a distribution of Er3+ ions from their fluorescence and two different techniques were used to measure the index of refraction.
Optical Materials | 2018
Subhabrata Bera; Craig D. Nie; M. Soskind; Yuan Li; James A. Harrington; Eric G. Johnson
conference on lasers and electro optics | 2018
Yuan Li; Wenzhe Li; J. Keith Miller; Eric G. Johnson; Subhabrata Bera; Craig D. Nie; James A. Harrington
Applied Optics | 2018
Long Cheng; Theresa F. Chick; J. Chapman; Elizabeth F. C. Dreyer; Craig D. Nie; Subhabrata Bera; James A. Harrington; Stephen C. Rand
Applied Optics | 2017
Subhabrata Bera; Craig D. Nie; M. Soskind; James A. Harrington
Advanced Solid State Lasers | 2017
Subhabrata Bera; Craig D. Nie; James A. Harrington