Lithium thionyl chloride high rate discharge [PDF]
Improvements in high rate lithium thionyl chloride power technology achieved by varying the electrolyte composition, operating temperature, cathode design, and cathode composition are discussed.
Klinedinst, K. A.
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Recent Progress and Emerging Application Areas for Lithium-Sulfur Battery Technology. [PDF]
Dörfler S +9 more
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Nanocrystalline TiO2/Carbon/Sulfur Composite Cathodes for Lithium-Sulfur Battery. [PDF]
Zukalová M +3 more
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Electrical Power Working Group report [PDF]
The status of and need for power technologies for Spacecraft 2000 were assessed and development programs required to establish an achievable and competitive technology base for spacecraft of the 21st century were identified.
Myers, Ira T., Vanommering, Gerrit
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Hierarchical Porous Graphene Bubbles as Host Materials for Advanced Lithium Sulfur Battery Cathode. [PDF]
Han W, Li Q, Zhu H, Luo D, Qin X, Li B.
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Evaluation of actuator energy storage and power sources for spacecraft applications [PDF]
The objective of this evaluation is to determine an optimum energy storage/power source combination for electrical actuation systems for existing (Solid Rocket Booster (SRB), Shuttle) and future (Advanced Launch System (ALS), Shuttle Derivative) vehicles.
Simon, William E., Young, Fred M.
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A Lamellar Yolk-Shell Lithium-Sulfur Battery Cathode Displaying Ultralong Cycling Life, High Rate Performance, and Temperature Tolerance. [PDF]
Liu J +7 more
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Optimization of Lithium-Sulfur Battery Performance via Nickel-Doped α-MnO<sub>2</sub> Modified Separator. [PDF]
Zhao Z, Wan L, Chen J, Ye H.
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Sulfur studies on lithium sulfur dioxide batteries [PDF]
Studies investigating the chemistry of the lithium SO2 batteries are ...
Dey, A. N.
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Electrochemical fractionation of stable sulfur isotopes in a rechargeable lithium-sulfur battery: a revisit from the law of mass conservation. [PDF]
Zhu YH, Xin S.
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