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Dive into the research topics where Michael Nyce is active.

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Featured researches published by Michael Nyce.


Nature Communications | 2017

Regenerable Cu-intercalated MnO2 layered cathode for highly cyclable energy dense batteries.

Gautam G. Yadav; Joshua W. Gallaway; Damon E. Turney; Michael Nyce; Jinchao Huang; Xia Wei; Sanjoy Banerjee

Manganese dioxide cathodes are inexpensive and have high theoretical capacity (based on two electrons) of 617 mAh g−1, making them attractive for low-cost, energy-dense batteries. They are used in non-rechargeable batteries with anodes like zinc. Only ∼10% of the theoretical capacity is currently accessible in rechargeable alkaline systems. Attempts to access the full capacity using additives have been unsuccessful. We report a class of Bi-birnessite (a layered manganese oxide polymorph mixed with bismuth oxide (Bi2O3)) cathodes intercalated with Cu2+ that deliver near-full two-electron capacity reversibly for >6,000 cycles. The key to rechargeability lies in exploiting the redox potentials of Cu to reversibly intercalate into the Bi-birnessite-layered structure during its dissolution and precipitation process for stabilizing and enhancing its charge transfer characteristics. This process holds promise for other applications like catalysis and intercalation of metal ions into layered structures. A large prismatic rechargeable Zn-birnessite cell delivering ∼140 Wh l−1 is shown.


Journal of Power Sources | 2011

Zinc morphology in zinc–nickel flow assisted batteries and impact on performance

Yasumasa Ito; Michael Nyce; Robert Plivelich; Martin Klein; Daniel A. Steingart; Sanjoy Banerjee


Journal of Power Sources | 2015

Rechargeability and economic aspects of alkaline zinc–manganese dioxide cells for electrical storage and load leveling

Nilesh Ingale; Joshua W. Gallaway; Michael Nyce; Alexander Couzis; Sanjoy Banerjee


Journal of Power Sources | 2011

Gas evolution in a flow-assisted zinc–nickel oxide battery

Yasumasa Ito; Michael Nyce; Robert Plivelich; Martin Klein; Sanjoy Banerjee


Chemistry of Materials | 2017

Rechargeable Zinc Alkaline Anodes for Long-Cycle Energy Storage

Damon E. Turney; Joshua W. Gallaway; Gautam G. Yadav; Rodolfo Ramirez; Michael Nyce; Sanjoy Banerjee; Yu-chen Karen Chen-Wiegart; Jun Wang; Michael J. D’Ambrose; Snehal Kolhekar; Jinchao Huang; Xia Wei


Journal of Power Sources | 2014

Development and testing of an economic grid-scale flow-assisted zinc/nickel-hydroxide alkaline battery

Damon E. Turney; Michael Shmukler; Kevin V. Galloway; Martin Klein; Yasumasa Ito; Tal Z. Sholklapper; Joshua W. Gallaway; Michael Nyce; Sanjoy Banerjee


Archive | 2012

Nickel-Zinc Flow Battery

Sanjoy Banerjee; Yasumasa Ito; Martin Klein; Michael Nyce; Daniel A. Steingart; Robert Plivelich; Joshua W. Gallaway


International Journal of Hydrogen Energy | 2018

Accessing the second electron capacity of MnO 2 by exploring complexation and intercalation reactions in energy dense alkaline batteries

Gautam G. Yadav; Xia Wei; Jinchao Huang; Damon E. Turney; Michael Nyce; Sanjoy Banerjee


Archive | 2013

Alkaline battery operational methodology

Tal Sholklapper; Joshua W. Gallaway; Daniel A. Steingart; Nilesh Ingale; Michael Nyce


Archive | 2017

Mixed Material Cathode for Secondary Alkaline Batteries

Gautam G. Yadav; Joshua W. Gallaway; Michael Nyce; Sanjov Banerjee

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Xia Wei

City College of New York

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Jinchao Huang

City College of New York

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Martin Klein

VU University Medical Center

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Robert Plivelich

City University of New York

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