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Meanwhile, 25-OHC markedly upregulated cytochrome b5 reductase 1 (CYB5R1) and POR, suppressed GSH expression, and promoted lipid peroxidation, thereby enhancing the sensitivity of IMS32 cells to ferroptosis and aggravating neuroglial injury
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Schmalz GmbH, Germany Stress-dependent porosity estimation by non-linear structural analysis and post-CFD modelling of deformed flow fields in VRFB Page 96 Sung-Jae Chung, Ah-Reum Kim, Joo-Hee Park, Sukkee Um Dept of Mechanical Engineering, Hanyang University, Republic of Korea Screening of redox couples for alkaline redox flow batteries Page 98 Alejandro Colli, Pekka Peljo, Vronique Amstutz, Hubert Girault EPFL Valais-Wallis, LEPA, Switzerland Modification and advanced characterisation of carbon paper electrodes for the all-vanadium redox flow battery Page 100 Barun Chakrabarti, Vladimir Yufit, Farid Tariq, Javier Rubio Garcia, Anthony Kucernak, Nigel Brandon Imperial College London, UK Solid-phase charge storage in redox mediated flow batteries Page 101 Christopher Dennison, Tong Wu, Pekka Peljo, Alberto Battistel, Heron Vrubel, Vronique Amstutz, Hubert Girault EPFL Valais-Wallis, LEPA, Switzerland Comparison of a flow-by and a flow-through setup for a vanadium-redox-flow battery Page 102 Lina Elbers, Ramn Frster, Hans-Joachim Lilienhof Westphalian University of Applied Sciences, Germany Experimental study of shunt currents in laboratory VFB stack Page 104 Jan Dundalek, Jiri Vrana, Milan Solik, Jaromir Pocedic, Petr Mazur, Milos Toulec, Juraj Kosek New Technologies Research Centre, University of West Bohemia, Czech Republic University of Chemistry and Technology Prague, Czech Republic Modelling a novel interdigitated flow field design for redox flow battery Page 104 Daouda Fofana, Edward Robert Schulich School of Engineering, Canada Electrospun-based composite carbon electrode for vanadium redox flow batteries Page 105 Abdulmonem Fetyan, Manoj Kayarkatte, Christina Roth Institute of Chemistry and Biochemistry, Free University of Berlin, Germany Synthesis of glassy carbon model surfaces to catalyze the vanadium redox reactions Page 106 Tobias Greese, Hubert Gasteiger ZAE Bayern, Germany Technical Electrochemistry, TUM, Germany Characterisation study of vanadium redox flow battery and its implementation in automotive applications Page 107 Gopinath Hariram, Pramila Rao, Samraj Dhinagar TVS Motor Company Limited, India Single cell performance analysis for novel titanium / manganese redox flow battery Page 108 Kei Hanafusa, Kenichi Ito, Hirokazu Kaku, Yong-Rong Dong, Kiyoaki Moriuchi, Toshio Shigematsu Power Systems R&D Center, Sumitomo Electric Industries, Japan Application of Nafion/polybenzimidazole blend membranes to vanadium flow batteries Page 110 Sangwon Kim, Dirk Henkensmeier, Nayeun Jo, Lidiya Komsiyska, Gaurav Gupta Microfluidics Group, KIST Europe, Germany Fuel Cell Research Center, KIST, Korea NEXT ENERGY EWE Research Centre for Energy Technology, Germany Economics of the vanadium redox flow battery for home and community storage Page 112 Sebastian Knig, Martin Uhrig, Thomas Leibfried Karlsruhe Institute of Technology (KIT), Germany Optimization of electrode-flow field interaction in an all-vanadium redox flow battery Page 114 Sanjay Kumar, Sreenivas Jayanti Department of Chemical Engineering, IIT Madras, India Advantages of the chloride-containing all vanadium redox flow battery system Page 116 Liyu Li UniEnergy Technologies, USA Miniaturized interdigitated flow fields for redox flow batteries: Introducing tapered multi-pass architectures Page 117 Julian Marschewski, Lorenz Brenner, Neil Ebejer, Patrick Ruch, Bruno Michel, Dimos Poulikakos Laboratory of Thermodynamics in Emerging Technologies, Mechanical and Process Engineering Department, ETH Zurich, Switzerland IBM Research Zurich, Switzerland Optical state of charge monitoring of vanadium flow battery Page 118 Robert Lynch, Nathan Quill, Jennifer Joyce, Sergiu Albu, Cattleya Petchsingh, Deirdre N Eidhin, Daniela Oboroceanu, Catherine Lenihan, Xin Gao, D
