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Solid-state Architecture Batteries for Enhanced Rechargeability and Safety (SABERS) Beyond Li-Ion: Technology to Enable Sustainable Electric AviationAll-electric vertical take-off and landing vehicles (eVTOL) for urban air mobility (UAM) concepts face numerous challenging technical barriers before their introduction into the consumer marketplace. The primary barrier to overcome is developing an energy storage system capable of meeting the rigorous aerospace safety and performance criteria. The performance metrics for eVTOL vehicles are at least two times greater than those of electric ground vehicles. Furthermore, inherently non-flammable batteries are essential for safe operation of commercial electric aerovehicles. The SABERS concept proposes a battery that meets the key performance criteria through development of a solid-state architecture battery utilizing high-capacity sulfur-selenium cathode and lithium metal anode. The combination of sulfur and selenium offers a balanced energy-to-power density ratio, which can be tailored to the specific application by altering the stoichiometric ratios of sulfur to selenium. This hybrid cathode will be developed by implementing NASA patented holey graphene technology as a highly conductive, ultra-lightweight electrode scaffold. A solid-state electrolyte will be used as a safe, non-flammable replacement to the highly flammable liquid organic electrolytes currently used in SOA lithium-ion batteries. This solid-state lithium-sulfur/selenium cell will be designed into a serial stacking configuration to enable dense packaging of the battery cells. The serial stacking configuration is termed a bipolar stack, which has the advantages of reducing overall cell weight, simplifying the interfaced connections for the cell, and minimizing the cooling requirements. Lastly, optimization of battery components will occur through a robust and rigorous combination of various computational modeling techniques covering multiple length scales. The expected result will be a fully solid-state battery with operational temperatures up to 150 °C which provides the required energy density, discharge rates, and inherent safety to meet the strict aerospace mission performance criteria. This presentation will demonstrate a feasible path for solid-state cells that possess a specific energy of greater than 400 Wh/kg to enable electric aircraft.
Document ID
20230002574
Acquisition Source
Glenn Research Center
Document Type
Poster
Authors
Rocco Viggiano
(Glenn Research Center Cleveland, Ohio, United States)
Donald Dornbusch
(Glenn Research Center Cleveland, Ohio, United States)
Yi Lin
(Langley Research Center Hampton, Virginia, United States)
Date Acquired
February 24, 2023
Subject Category
Aircraft Propulsion and Power
Chemistry and Materials (General)
Solid-State Physics
Meeting Information
Meeting: ImaginAviation: A gateway to Aviation Transformation
Location: Virtual Conference
Country: US
Start Date: February 28, 2023
End Date: March 2, 2023
Sponsors: National Aeronautics and Space Administration
Funding Number(s)
WBS: 533127.02.20.03.02
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Technical Review
Single Expert
Keywords
Urban Air Mobility (UAM) Vehicles
Electric Vertical Take-Off and Landing Vehicles (eVTOL)
Solid-State Batteries
Lithium-Sulfur Batteries
Solid-state Electrolyte
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