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roadmap for sodium-ion batteries

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J. Phys. Energy 3 (2021) 031503 N Tapia-Ruiz et al [257] [258] [259] [260] [261] [262] [263] [264] [265] [266] [267] [268] [269] [270] [271] [272] [273] [274] [275] [276] [277] [278] [279] [280] [281] [282] [283] [284] [285] [286] [287] [288] Luo C, Langrock A, Fan X, Liang Y and Wang C 2017 P2-type transition metal oxides for high performance Na-ion battery cathodes J. Mater. Chem. A 5 18214–20 Tang Y, Zhang W, Xue L, Ding X, Wang T, Liu X, Liu J, Li X and Huang Y 2016 Polypyrrole-promoted superior cyclability and rate capability of NaxFe[Fe(CN)6] cathodes for sodium-ion batteries J. Mater. Chem. A 4 6036–41 You Y, Dolocan A, Li W and Manthiram A 2019 Understanding the air-exposure degradation chemistry at a nanoscale of layered oxide cathodes for sodium-ion batteries Nano Lett. 19 182–8 Lyu Y, Yu J, Wu J, Effat M B and Ciucci F 2019 Stabilizing Na-metal batteries with a manganese oxide cathode using a solid-state composite electrolyte J. Power Sources 416 21–28 Ranninger J, Wachs S J, Möller J, Mayrhofer K J J and Berkes B B 2020 On-line monitoring of dissolution processes in nonaqueous electrolytes—a case study with platinum Electrochem. Commun. 114 106702 Nikman S, Zhao D, Gonzalez-Perez V, Hoster H E and Mertens H F L 2021 Surface or bulkr Real-time manganese dissolution detection in a lithium-ion cathode Electrochim. Acta 386 138373 Lopes P P, Zorko M, Hawthorne K L, Connell J G, Ingram B J, Strmcnik D, Stamenkovic V R and Markovic N M 2018 Real-time monitoring of cation dissolution/deintercalation kinetics from transition-metal oxides in organic environments J. Phys. Chem. Lett. 9 4935–40 Chen J-S, Wang L-F, Fang B-J, Lee S-Y and Guo R-Z 2006 Rotating ring–disk electrode measurements on Mn dissolution and capacity losses of spinel electrodes in various organic electrolytes J. Power Sources 157 515–21 Zhao L, Chénard E, Çapraz Ö Ö, Sottos N R and White S R 2018 Direct detection of manganese ions in organic electrolyte by UV-vis spectroscopy J. Electrochem. Soc. 165 A345–8 Delmas C 2018 Sodium and sodium-ion batteries: 50 years of research Adv. Energy Mater. 8 1703137 Chayambuka K, Mulder G, Danilov D L and Notten P H L 2020 From Li-ion batteries toward Na-ion chemistries: challenges and opportunities Adv. Energy Mater. 10 2001310 Harper G et al 2019 Recycling lithium-ion batteries from electric vehicles Nature 575 75–86 Pathan T S, Rashid M, Walker M, Widanage W D and Kendrick E 2019 Active formation of Li-ion batteries and its effect on cycle life J. Phys. Energy 1 044003 Kishore B, Chen L, Dancer C and Kendrick E 2020 Electrochemical formation protocols for maximising the life-time of a sodium ion battery Chem. Commun. 56 12925–8 Chen L, Kishore B, Walker M, Dancer C and Kendrick E 2020 Nanozeolite ZSM-5 electrolyte additive for long life sodium-ion batteries Chem. Commun. 56 11609–12 Ledwoch D, Robinson J B, Gastol D, Smith K, Shearing P R, Brett D J L and Kendrick E 2020 Hard carbon composite electrodes for sodium-ion batteries with nanozeolite and carbon black additives Batter. Supercaps 4 163–72 Chen C, Brosa Planella F, O’Regan K, Gastol D, Widanage W D and Kendrick E 2020 Development of experimental techniques for parameterization of multi-scale lithium-ion battery models J. Electrochem. Soc. 167 080534 The Faraday Institution 2019 The Gigafactory Boom: The Demand for Battery Manufacturing in the UK (available at: https:// faraday.ac.uk/wp-content/uploads/2019/08/Faraday_Insights-2_FINAL.pdf) Jolly J 2020 UK’s first car battery ‘gigafactory’ to be built by two startups The Guardian (available at: https://www.theguardian. com/business/2020/may/20/uk-first-car-battery-gigafactory-amte-power-britishvolt) Faradion 2020 Press release: faradion announces major partnership for developing sodium-ion batteries for commercial vehicles in India (available at: www.faradion.co.uk/faradion-announces-partnership-for-developing-sodium-ion-batteries-in-india/) (Accessed 3 August 2020) Bauer A, Song J, Vail S, Pan W, Barker J and Lu Y 2018 The scale-up and commercialization of nonaqueous Na-ion battery technologies Adv. Energy Mater. 8 1702869 Haselrieder W, Ivanov S, Tran H Y, Theil S, Froböse L, Westphal B, Wohlfahrt-Mehrens M and Kwade A 2014 Influence of formulation method and related processes on structural, electrical and electrochemical properties of LMS/NCA-blend electrodes Prog. Solid State Chem. 42 157–74 Wang P-F, You Y, Yin Y-X and Guo Y-G 2018 Layered oxide cathodes for sodium-ion batteries: phase transition, air stability, and performance Adv. Energy Mater. 8 1701912 Wang H, Liao X-Z, Yang Y, Yan X, He Y-S and Ma Z-F 2016 Large-scale synthesis of NaNi1/3Fe1/3Mn1/3O2 as high performance cathode materials for sodium ion batteries J. Electrochem. Soc. 163 A565–70 Ludwig B, Zheng Z, Shou W, Wang Y and Pan H 2016 Solvent-free manufacturing of electrodes for lithium-ion batteries Sci. Rep. 6 23150 Schälicke G, Landwehr I, Dinter A, Pettinger K-H, Haselrieder W and Kwade A 2020 Solvent-free manufacturing of electrodes for lithium-ion batteries via electrostatic coating Energy Technol. 8 1900309 Samba A, Omar N, Gualous H, Capron O, Van Den Bossche P and Van Mierlo J 2014 Impact of tab location on large format lithium-ion pouch cell based on fully coupled tree-dimensional electrochemical-thermal modeling Electrochim. Acta 147 319–29 Rudola A et al 2021 Commercialisation of high energy density sodium-ion batteries: Faradion’s journey and outlook J. Mater Chem. A 9 8279–302 Broux T et al 2019 High rate performance for carbon-coated Na3V2(PO4)2F3 in Na-ion batteries Small Methods 3 1800215 Rong X et al 2020 Na-ion batteries: from fundamental research to engineering exploration Energy Storage Sci. Technol. 9 515–22 Datasheet 2019 Natron energy blue tray 4000 Distributed at the Battery Show (Novi, MI, 9–12 September) (a) Datasheet. Toshiba rechargeable battery SCiB high power 2.9 Ah cell (available at: www.scib.jp/en/download/ ToshibaRechargeableBattery-en.pdf) (Accessed 17 September 2020); (b) Datasheet Amaron Quanta 12V200Ah (available at: www.quanta.in/images/pdf/Quanta-SF-Brochure.pdf) (Accessed 17 September 2020); (c) Datasheet ENERpower Shandong goldencell electronics technology model HTCFR18650-1800mAh-3.2V (available at: https://enerpower.de/wp/wp-content/ uploads/2019/07/Technical-Specifications-HTCFR18650-1800mAh-3.2V-EN.pdf) (Accessed 17 September 2020); (d) Datasheets A123 Nanophosphate® high power lithium ion cell ANR26650M1-B (available at: https://a123batteries.com/product_images/ uploaded_images/26650.pdf, https://www.evlithium.com/A123-Battery/632.html, https://www.batteryspace.com/prod-specs/ 6610.pdf) (Accessed 17 September 2020); (e) Datasheet AA portable power Li-ion polymer battery 3.7V 10000 mAh PL-9059156 (available at: www.batteryspace.com/prod-specs/3.7V9059156.pdf) (Accessed 17 September 2020); (f) Datasheet Panasonic lithium ion NCR18650B (available at: www.batteryspace.com/prod-specs/NCR18650B.pdf) (Accessed 17 September 2020); (g) Datasheet LG Chem lithium ion INR21700 M50 18.20Wh (available at: http://queenbattery.com.cn/ index.php?controller=attachment&id_attachment=111) (Accessed 17 September 2020) 87

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Product and Development Focus for Infinity Turbine

ORC Waste Heat Turbine and ORC System Build Plans: All turbine plans are $10,000 each. This allows you to build a system and then consider licensing for production after you have completed and tested a unit.

Redox Flow Battery Technology: With the advent of the new USA tax credits for producing and selling batteries ($35/kW) we are focussing on a simple flow battery using shipping containers as the modular electrolyte storage units with tax credits up to $140,000 per system.

Our main focus is on the salt battery. This battery can be used for both thermal and electrical storage applications.

We call it the Cogeneration Battery or Cogen Battery.

One project is converting salt (brine) based water conditioners to simultaneously produce power.

In addition, there are many opportunities to extract Lithium from brine (salt lakes, groundwater, and producer water).

Salt water or brine are huge sources for lithium. Most of the worlds lithium is acquired from a brine source. It's even in seawater in a low concentration. Brine is also a byproduct of huge powerplants, which can now use that as an electrolyte and a huge flow battery (which allows storage at the source).

We welcome any business and equipment inquiries, as well as licensing our turbines for manufacturing.

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