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China solar seawater battery

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China solar seawater battery ( china-solar-seawater-battery )

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Chargeable Aqueous Sodium‐Ion Batteries with 90% Input Electric Energy Savings. Adv. Energy Mater. 2016, 6 (18), 1600632. 92. Liu, Y.; Li, N.; Liao, K.; Li, Q.; Ishida, M.; Zhou, H., Lowering the charge voltage of Li–O2 batteries via an unmediated photoelectrochemical oxidation approach. J. Mater. Chem. A 2016, 4 (32), 12411-12415. 93. Nakata, K.; Fujishima, A., TiO2 photocatalysis: Design and applications. Journal of Photochemistry and Photobiology C: Photochemistry Reviews 2012, 13 (3), 169-189. 94. Mishra, M.; Chun, D.-M., α-Fe 2 O 3 as a photocatalytic material: A review. Applied Catalysis A: General 2015, 498, 126-141. 95. Szilágyi, I. M.; Fórizs, B.; Rosseler, O.; Szegedi, Á.; Németh, P.; Király, P.; Tárkányi, G.; Vajna, B.; Varga-Josepovits, K.; László, K.; Tóth, A. L.; Baranyai, P.; Leskelä, M., WO3 photocatalysts: Influence of structure and composition. J. Catal. 2012, 294, 119-127. 96. Kang, D.; Kim, T. W.; Kubota, S. R.; Cardiel, A. C.; Cha, H. G.; Choi, K. S., Electrochemical Synthesis of Photoelectrodes and Catalysts for Use in Solar Water Splitting. Chem. Rev. (Washington, DC, U. S.) 2015, 115 (23), 12839-87. 97. Wang, G.; Wang, H.; Ling, Y.; Tang, Y.; Yang, X.; Fitzmorris, R. C.; Wang, C.; Zhang, J. Z.; Li, Y., Hydrogen-treated TiO2 nanowire arrays for photoelectrochemical water splitting. Nano Lett. 2011, 11 (7), 3026-3033. 98. Khan, S. U.; Al-Shahry, M.; Ingler, W. B., Efficient photochemical water splitting by a chemically modified n-TiO2. science 2002, 297 (5590), 2243-2245. 99. Yu, J.; Qi, L.; Jaroniec, M., Hydrogen production by photocatalytic water splitting over Pt/TiO2 nanosheets with exposed (001) facets. J. Phys. Chem. C 2010, 114 (30), 13118-13125. 100. Pu, Y.-C.; Wang, G.; Chang, K.-D.; Ling, Y.; Lin, Y.-K.; Fitzmorris, B. C.; Liu, C.-M.; Lu, X.; Tong, Y.; Zhang, J. Z., Au nanostructure-decorated TiO2 nanowires exhibiting photoactivity across entire UV-visible region for photoelectrochemical water splitting. Nano Lett. 2013, 13 (8), 3817- 3823. 101. Galińska, A.; Walendziewski, J., Photocatalytic water splitting over Pt− TiO2 in the presence of 119

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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.

CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP