A. J. H. Donné, A. E. Costley, R. Barnsley, H. Bindslev, R. Boivin, G. Conway, R. Fisher, R. Giannella, H. Hartfuss, M. G. von Hellermann, E. Hodgson, L. C. Ingesson, K. Itami, D. Johnson, Y. Kawano, T. Kondoh, A. Krasilnikov, Y. Kusama, A. Litnovsky, P. Lotte, P. Nielsen, T. Nishitani, F. Orsitto, B. J. Peterson, G. Razdobarin, J. Sanchez, M. Sasao, T. Sugie, G. Vayakis, V. Voitsenya, K. Vukolov, C. Walker, and K. Young, the ITPA Topical Group on Diagnostics, “Chapter 7: diagnostics,” Nucl. Fusion 47, S337–S384 (2007).
P. Spuig, P. Defrasne, G. Martin, M. Moreau, P. Moreau, and F. Saint-Laurent, “An analog integrator for thousand second long pulses in Tore Supra,” Fusion Eng. Des. 66-68, 953–957 (2003).
E. R. Hodgson, “General radiation problems for insulating materials in future fusion devices,” J. Nucl. Mater. 258-263, 226–233 (1998).
G. Vayakis, E. R. Hodgson, V. Voitsenya, and C. I. Walker, “Generic diagnostic issues for a burning plasma experiment,” Fusion Sci. Technol. 53, 699–750 (2008).
N. M. Kozhevnikov, Y. Barmenkov, V. A. Belyakov, A. Medvedev, and G. Razdobarin, “Fiber-optic sensor for plasma current diagnostic in tokamaks,” Proc. SPIE 1584, 138–144 (1991).
Y. Barmenkov and F. Mendoza-Santoyo, “Faraday plasma current sensor with compensation for reciprocal birefringence induced by mechanical perturbations,” J. Appl. Res. Technol. 1, 157–163 (2003).
P. Moreau, I. Bolshakova, B. Brichard, G. Chitarin, R. Delogu, I. Duran, A. Encheva, Y. Fournier, A. Galo, A. Le-Luyer, J. B. Lister, P. Malard, J. M. Moret, P. Pastor, S. Peruzzo, J. Romero, D. Testa, M. Toussaint, G. Vayakis, and R. Vila, “Development of a magnetic diagnostic suitable for the ITER radiation environment,” in 1st International Conference on Advancements in Nuclear Instrumentation, Measurement Methods and their Applications (IEEE, 2009).
D. L. Brower, W. X. Ding, and S. D. Terry, “Laser polarimetric measurement of equilibrium and fluctuating magnetic fields in a reversed field pinch (invited),” Rev. Sci. Instrum. 74, 1534–1540 (2003).
Z. Y. Zou, H. Q. Liu, W. X. Ding, J. Chen, D. L. Brower, H. Lian, S. X. Wang, W. M. Li, Y. Yao, L. Zeng, and Y. X. Jie, “Effects of stray lights on Faraday rotation measurement for polarimeter-interferometer system on EAST,” Rev. Sci. Instrum. 89, 013510 (2018).
M. Aerssens, F. Descamps, A. Gusarov, P. Megret, P. Morreau, and M. Wuilpart, “Influence of the optical fiber type on the performances of fiber-optics current sensor dedicated to plasma current measurement in ITER,” Appl. Opt. 54, 5983–5991 (2015).
P. Drexler and P. Fiala, “Utilization of Faraday mirror in fiber optic current sensors,” Radioengineering 17, 101–107 (2008).
L. Palmieri, D. Sarchi, and A. Galtarossa, “Distributed measurement of high electric current by means of polarimetric optical fiber sensor,” Opt. Express 23, 11073–11079 (2015).
M. Wuilpart, M. Aerssens, A. Gusarov, P. Moreau, and P. Megret, ‘“Plasma current measurement in thermonuclear fusion reactors using a photon-counting POTDR,” IEEE Photon. Technol. Lett. 29, 547–550 (2017).
A. J. Rogers, “Polarisation optical time domain reflectometry,” Electron. Lett. 16, 489–490 (1980).
M. Aerssens, A. Gusarov, P. Moreau, P. Malard, V. Masaut, P. Megret, and M. Wuilpart, “Development of a Jones vector based model for the measurement of a plasma current in a thermonuclear fusion reactor with a POTDR setup,” Proc. SPIE 8439, 84390D (2012).
Y. Huang, H. Chen, W. Dong, F. Pang, J. Wen, Z. Chen, and T. Wang, “Fabrication of europium-doped silica optical fiber with high Verdet constant,” Opt. Express 24, 18709–18717 (2016).
A. J. Rogers, Y. R. Zhou, and V. A. Handerek, “Computational polarization-optical time domain reflectometry for measurement of the spatial distribution of PMD in optical fibres,” in 4th Optical Fiber Measurement Conference (OFMC) (1997), pp. 126–129.
M. Wuilpart and M. Tür, in Polarization Effects in Optical Fibers, L. Thévenaz, ed., Advanced Fiber Optics: Concepts and Technology Series (EPFL, 2011), Chap. 2.
L. Palmieri and A. Galtarossa, “Distributed polarization-sensitive reflectometry in nonreciprocal single-mode optical fibers,” J. Lightwave Technol. 29, 3178–3184 (2011).
P. Moreau, B. Brichards, A. Fil, Ph. Malard, P. Pastor, A. Le-Luyer, F. Samaille, and V. Massaut, “Test of fiber optic based current sensors on the Tore Supra tokamak,” Fusion Eng. Des. 86, 1222–1226 (2011).
P. Eraerds, M. Legré, J. Zhang, H. Zbinden, and N. Gisin, “Photon counting OTDR: advantages and limitations,” J. Lightwave Technol. 28, 952–964 (2010).
S. Rashleigh, “Origins and control of polarization effects in single-mode fibers,” J. Lightwave Technol. 1, 312–331 (1983).
S. Girard, J. Kuhnhenn, A. Gusarov, B. Brichard, M. V. Uffelen, Y. Ouerdane, A. Boukenter, and C. Marcandella, “Radiation effects on silica-based optical fibers: recent advances and future challenges,” IEEE Trans. Nucl. Sci. 60, 3393–3400 (2013).
T. Wijnands, K. Aikawa, J. Kuhnhenn, D. Ricci, and U. Weinand, “Radiation tolerant optical fibers: from sample testing to large series production,” J. Lightwave Technol. 29, 3393–3400 (2011).
V. de Miguel Soto, J. Jason, D. Kurtoglu, M. Lopez-Amo, and M. Wuilpart, “Spectral shadowing suppression technique in phase-OTDR sensing based on weak fiber Bragg grating array,” Opt. Lett. 44, 526–529 (2019).
F. Descamps, M. Aerssens, A. Gusarov, P. Megret, V. Massaut, and M. Wuilpart, “Simulation of vibration-induced effect on plasma current measurement using a fiber optic current sensor,” Opt. Express 22, 14666–14680 (2014).
M. Wuilpart, B. Vanus, A. Andrasan, A. Gusarov, P. Moreau, and P. Mégret, “Study of a fiber-optics current sensor for the measurement of plasma current in ITER,” Proc. SPIE 9916, 99160L (2016).
C. Crunelle, M. Legre, M. Wuilpart, P. Megret, and N. Gisin, “Distributed temperature sensor interrogator based on polarization-sensitive reflectometry,” IEEE Sens. J. 9, 1125–1129 (2009).
ITER Physics Expert Group on Diagnostics and ITER Physics Basis Editors, “Measurement of plasma parameters,” Nucl. Fusion 39, 2541–2575 (1999).
G. Vayakis, “System Design Description (DDD) 55.A0 Magnetic Diagnostics,” ITER IDM 3UYQGX (ITER Organization, 2016).