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Dive into the research topics where Saumyabrata Banerjee is active.

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Featured researches published by Saumyabrata Banerjee.


Optics Letters | 2012

High-efficiency 10 J diode pumped cryogenic gas cooled Yb:YAG multislab amplifier

Saumyabrata Banerjee; Klaus Ertel; Paul D. Mason; P. J. Phillips; M. Siebold; Markus Loeser; Cristina Hernandez-Gomez; John Collier

We report on the first demonstration of a diode-pumped, gas cooled, cryogenic multislab Yb:YAG amplifier. The performance was characterized over a temperature range from 88 to 175 K. A maximum small-signal single-pass longitudinal gain of 11.0 was measured at 88 K. When amplifying nanosecond pulses, recorded output energies were 10.1 J at 1 Hz in a four-pass extraction geometry and 6.4 J at 10 Hz in a three-pass setup, corresponding to optical to optical conversion efficiencies of 21% and 16%, respectively. To our knowledge, this represents the highest pulse energy so far obtained from a cryo-cooled Yb-laser and the highest efficiency from a multijoule diode pumped solid-state laser system.


Optics Express | 2011

Optimising the efficiency of pulsed diode pumped Yb:YAG laser amplifiers for ns pulse generation.

Klaus Ertel; Saumyabrata Banerjee; Paul D. Mason; P. J. Phillips; M. Siebold; Cristina Hernandez-Gomez; J. C. Collier

We present a numerical model of a pulsed, diode-pumped Yb:YAG laser amplifier for the generation of high energy ns-pulses. This model is used to explore how optical-to-optical efficiency depends on factors such as pump duration, pump spectrum, pump intensity, doping concentration, and operating temperature. We put special emphasis on finding ways to achieve high efficiency within the practical limitations imposed by real-world laser systems, such as limited pump brightness and limited damage fluence. We show that a particularly advantageous way of improving efficiency within those constraints is operation at cryogenic temperature. Based on the numerical findings we present a concept for a scalable amplifier based on an end-pumped, cryogenic, gas-cooled multi-slab architecture.


Optics Letters | 2016

100 J-level nanosecond pulsed diode pumped solid state laser

Saumyabrata Banerjee; Paul D. Mason; Klaus Ertel; P. Jonathan Phillips; Mariastefania De Vido; Oleg Chekhlov; Martin Divoky; Jan Pilar; Jodie Smith; Thomas J. Butcher; Andrew Lintern; Steph Tomlinson; Waseem Shaikh; C. J. Hooker; Antonio Lucianetti; Cristina Hernandez-Gomez; Tomas Mocek; C.B. Edwards; John Collier

We report on the successful demonstration of a 100 J-level, diode pumped solid state laser based on cryogenic gas cooled, multi-slab ceramic Yb:YAG amplifier technology. When operated at 175 K, the system delivered a pulse energy of 107 J at a 1 Hz repetition rate and 10 ns pulse duration, pumped by 506 J of diode energy at 940 nm, corresponding to an optical-to-optical efficiency of 21%. To the best of our knowledge, this represents the highest energy obtained from a nanosecond pulsed diode pumped solid state laser. This demonstration confirms the energy scalability of the diode pumped optical laser for experiments laser architecture.


Optics Express | 2015

DiPOLE: a 10 J, 10 Hz cryogenic gas cooled multi-slab nanosecond Yb:YAG laser.

Saumyabrata Banerjee; Klaus Ertel; Paul D. Mason; P. J. Phillips; De Vido M; Jodie Smith; Thomas J. Butcher; Cristina Hernandez-Gomez; R. J. S. Greenhalgh; John Collier

The Diode Pumped Optical Laser for Experiments (DiPOLE) project at the Central Laser Facility aims to develop a scalable, efficient high pulse energy diode pumped laser amplifier system based on cryogenic gas cooled, multi-slab ceramic Yb:YAG technology. We present recent results obtained from a scaled down prototype laser system designed for operation at 10 Hz pulse repetition rate. At 140 K, the system generated 10.8 J of energy in a 10 ns pulse at 1029.5 nm when pumped by 48 J of diode energy at 940 nm, corresponding to an optical to optical conversion efficiency of 22.5%. To our knowledge, this represents the highest pulse energy obtained from a cryo cooled Yb laser to date and the highest efficiency achieved by a multi-Joule diode pumped solid state laser system. Additionally, we demonstrated shot-to-shot energy stability of 0.85% rms for the system operated at 7 J, 10 Hz during several runs lasting up to 6 hours, with more than 50 hours in total. We also demonstrated pulse shaping capability and report on beam, wavefront and focal spot quality.


Proceedings of SPIE | 2011

Optimised design for a 1 kJ diode-pumped solid-state laser system

Paul D. Mason; Klaus Ertel; Saumyabrata Banerjee; P. Jonathan Phillips; Cristina Hernandez-Gomez; J. L. Collier

A conceptual design for a kJ-class diode-pumped solid-state laser (DPSSL) system based on cryogenic gas-cooled multislab ceramic Yb:YAG amplifier technology has been developed at the STFC as a building block towards a MJ-class source for inertial fusion energy (IFE) projects such as HiPER. In this paper, we present an overview of an amplifier design optimised for efficient generation of 1 kJ nanosecond pulses at 10 Hz repetition rate. In order to confirm the viability of this technology, a prototype version of this amplifier scaled to deliver 10 J at 10 Hz, DiPOLE, is under development at the Central Laser Facility. A progress update on the status of this system is also presented.


Optics Express | 2012

High-energy, ceramic-disk Yb:LuAG laser amplifier

M. Siebold; Markus Loeser; Fabian Roeser; M. Seltmann; G. Harzendorf; I. Tsybin; S. Linke; Saumyabrata Banerjee; Paul D. Mason; P. J. Phillips; Klaus Ertel; J. Collier; U. Schramm

We report the first short-pulse amplification results to several hundred millijoule energies in ceramic Yb:LuAG. We have demonstrated ns-pulse output from a diode-pumped Yb:LuAG amplifier at a maximum energy of 580 mJ and a peak optical-to-optical efficiency of 28% at 550 mJ. In cavity dumped operation of a nanosecond oscillator we obtained 1 mJ at up to 100 Hz repetition rate. A gain bandwidth of 5.4 nm was achieved at room temperature by measuring the small-signal single-pass gain. Furthermore, we compared our results with Yb:YAG within the same amplifier system.


Optica | 2017

Kilowatt average power 100 J-level diode pumped solid state laser

Paul D. Mason; Martin Divoký; Klaus Ertel; Jan Pilař; Thomas J. Butcher; Martin Hanus; Saumyabrata Banerjee; Jonathan Phillips; Jodie Smith; Mariastefania De Vido; Antonio Lucianetti; Cristina Hernandez-Gomez; Chris Edwards; Tomas Mocek; John Collier

We report efficient and stable operation of the first multi-joule diode pumped solid state laser delivering 1 kW average power in 105 J, 10 ns pulses at 10 Hz, confirming the power scalability of multi-slab cryogenic gas-cooled amplifier technology.


Proceedings of SPIE | 2015

DiPOLE100: A 100 J, 10 Hz DPSSL using cryogenic gas cooled Yb:YAG multi slab amplifier technology

Paul D. Mason; Saumyabrata Banerjee; Klaus Ertel; P. J. Phillips; Thomas J. Butcher; Jodie Smith; Mariastefania De Vido; Stephanie Tomlinson; Oleg Chekhlov; Waseem Shaikh; Steve Blake; Paul Holligan; Martin Divoky; Jan Pilar; Cristina Hernandez-Gomez; R. Justin S. Greenhalgh; J. L. Collier

In this paper we provide an overview of the design of DiPOLE100, a cryogenic gas-cooled DPSSL system based on Yb:YAG multi-slab amplifier technology, designed to efficiently produce 100 J pulses, between 2 and 10 ns in duration, at up to 10 Hz repetition rate. The current system is being built at the CLF for the HiLASE project and details of the front end, intermediate 10J cryo-amplifier and main 100J cryo-amplifier are presented. To date, temporal and spatial pulse shaping from the front end has been demonstrated, with 10 ns pulses of arbitrary shape (flat-top, linear ramps, and exponentials) produced with energies up to 150 mJ at 10 Hz. The pump diodes and cryogenic gas cooling system for the 10J cryo-amplifier have been fully commissioned and laser amplification testing has begun. The 100J, 940 nm pump sources have met full specification delivering pulses with 250 kW peak power and duration up to 1.2 ms at 10 Hz, corresponding to 3 kW average power each. An intensity modulation across the 78 mm square flat-top profile of < 5 % rms was measured. The 100J gain media slabs have been supplied and their optical characteristics tested. Commissioning of the 100J amplifier will commence shortly.


Proceedings of SPIE | 2013

DiPOLE: a scalable laser architecture for pumping multi-Hz PW systems

Klaus Ertel; Saumyabrata Banerjee; Paul D. Mason; P. Jonathan Phillips; R. Justin S. Greenhalgh; Cristina Hernandez-Gomez; J. L. Collier

DiPOLE is a concept for a large aperture gas-cooled cryogenic multislab DPSSL amplifier based on ceramic Yb:YAG. It is designed to amplify ns-pulses at multi-Hz repetition rates and is scalable up the kJ-level. The concept was first tested on a small scale prototype which has so far produced 7.4 J at 10 Hz, with the aim of reaching 10 J at an optical-to-optical efficiency of 25 %. The design of an additional amplifier stage producing 100 J at 10 Hz is underway. When used to pump short-pulse Ti:S or OPCPA systems, PW peak power levels can be produced at repetition rates and efficiencies that lie orders of magnitude above what is achievable today.


Optics Express | 2016

High energy, high repetition rate, second harmonic generation in large aperture DKDP, YCOB, and LBO crystals

Jonathan Phillips; Saumyabrata Banerjee; Jodie Smith; Mike Fitton; Tristan Davenne; Klaus Ertel; Paul D. Mason; Thomas J. Butcher; Mariastefania De Vido; J. Greenhalgh; C.B. Edwards; Cristina Hernandez-Gomez; John Collier

We report on type-I phase-matched second harmonic generation (SHG) in three nonlinear crystals: DKDP (98% deuteration), YCOB (XZ plane), and LBO (XY plane), of 8 J, 10 Hz cryogenic gas cooled Yb:YAG laser operating at 1029.5 nm. DKDP exhibited an efficiency of 45% at a peak fundamental intensity of 0.24 GW/cm2 for 10 Hz operation at 10 ns. At the same intensity and repetition rate, YCOB and LBO showed 50% and 65% conversion efficiencies, respectively. Significant improvement in conversion efficiency, to a maximum of 82%, was demonstrated in LBO at 0.7 GW/cm2 and 10 Hz, generating output energy of 5.6 J at 514.75 nm, without damage or degradation. However, no improvement in conversion efficiency was recorded for YCOB at this increased intensity. Additionally, we present theoretically calculated temperature maps for both 10 J and 100 J operation at 10 Hz, and discuss the suitability of these three crystals for frequency conversion of a 100 J, 10 Hz diode pumped solid state laser (DPSSL).

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Paul D. Mason

Rutherford Appleton Laboratory

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Klaus Ertel

Rutherford Appleton Laboratory

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John Collier

Rutherford Appleton Laboratory

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Jodie Smith

Rutherford Appleton Laboratory

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Thomas J. Butcher

Rutherford Appleton Laboratory

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Mariastefania De Vido

Rutherford Appleton Laboratory

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P. J. Phillips

Rutherford Appleton Laboratory

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P. Jonathan Phillips

Rutherford Appleton Laboratory

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Martin Divoky

Academy of Sciences of the Czech Republic

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