Project overview
When high-intensity short-pulse laser light propagates through optical fibres or planar waveguides, it experiences significant spectral broadening through nonlinear processes. Thus, single-wavelength laser light can be converted into broadband white light, a so-called supercontinuum spectrum. Such light sources have already been used for a range of scientific purposes, for example for precision spectroscopy which was awarded the 2005 Nobel Prize in Physics. However, for mass-market applications, for example in illumination and image projection, current systems provide too low power and not sufficent energy efficiency. A promising solution is to use fibres of larger core diameters for high power and to exploit multimode nonlinear effects for enhanced efficiency.However, while supercontinuum generation in single-mode fibres is well understood, very little is known about its multimode counterpart. Preliminary experiments suggest a spate of novel and exciting effects, but so far these more complex nonlinear systems are largely unexplored.Here, we propose to develop a theoretical framework to model such complex systems. We will perform detailed analytical investigations and develop computer code for efficient numerical simulations. We will then use these tools to obtain a thorough understanding of the fundamental physics of nonlinear multimode pulse propagation and to explain these novel observations. Finally, our results will allow us to design fibres for spatial and spectral tailoring of complex supercontinua, but will also provide novel insights into the physics of other high-power devices such as large-core fibre lasers and amplifiers.
Staff
Lead researchers
Collaborating research institutes, centres and groups
Research outputs
Kai Shi, Ariel Gomez, Xianqing Jin, Yongmin Jung, Crisanto Quintana, Dominic O'Brien, Frank Payne, Pranabesh Barua, Jayanta Sahu, Qiongyue Kang, Shaif-ul Alam, David Richardson & Benn Thomsen,
2016
Type: conference
2016, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 374(2062)
Type: article
C. Li, K.P.M. Rishad, P. Horak, Y. Matsuura & D. Faccio,
2014, Optics Express, 22(1), 1143-1151
DOI: 10.1364/OE.22.001143
Type: article
Graham D. Hesketh, Francesco Poletti & Peter Horak,
2012, Journal of Lightwave Technology, 30(17), 2764-2769
Type: article
Jonathan H.V. Price, Xian Feng, A.M. Heidt, Gilberto Brambilla, Peter Horak, Francesco Poletti, Giorgio Ponzo, Periklis Petropoulos, Marco Petrovich, Jindan Shi, Morten Ibsen, Wei H. Loh, Harvey N. Rutt & David J. Richardson,
2012, Optical Fiber Technology, 18(5), 327-344
Type: article
Richard T. Chapman, Thomas J. Butcher, Peter Horak, Francesco Poletti, Jeremy G. Frey & William S. Brocklesby,
2010, Optics Express, 18(12), 13279-13284
DOI: 10.1364/OE.18.013279
Type: article
Xian Feng, Francesco Poletti, Angela Camerlingo, Francesca Parmigiani, Peter Horak, Periklis Petropoulos, Wei H. Loh & David J. Richardson,
2009, Optics Express, 17(22), 20249-20255
DOI: 10.1364/OE.17.020249
Type: article