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CATHODE

CATHODE: explore 12 source-linked works published from 1964 to 2026, with original documents and citations.

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Includes records with this source-supplied label or an explicit phrase match in their metadata. Matches indicate a mention, not proof that a paper uses a method or tests a material. Source versions are consolidated by DOI.

Sources: osti, nasa. Collection updated 2026-09-15. Counts describe this index, not the complete source archives.

Understanding Discharge‐Driven Growth of Cathode Impedance in Ni‐Rich NMC Cathodes

Degradation of LiNi x Mn y Co 1-x-y O 2 (NMC)-based lithium-ion batteries depends strongly on cut-off voltage ranges. In addition to the high upper cut-off voltage, a high depth of discharge (i.e., lower cut-off voltage) significantly worsens cathode impedance growth and capacity fade during long-term cycling. However, there is currently no consensus on the mechanism behind the negative role of a deep discharge. Here, this phenomenon was investigated in graphite||NMC cells with single-crystal cathodes (LiNi 0.6 Co 0.2 Mn 0.2 O 2 (NMC622) or LiNi 0.76 Co 0.14 Mn 0.10 O 2 (NMC76)) using targeted aging protocols (constant high-voltage holds vs. charge–discharge cycling), while monitoring transition-metal (TM) dissolution, cathode-electrolyte interface (CEI) impedance, and NMC surface composition. We demonstrate a correlation between discharge-driven CEI impedance growth and increased TM dissolution. Furthermore, this degradation pathway is more pronounced in lower-Ni NMC622 than in higher-Ni (NMC76) under comparable delithiation states at charge, with both compositions undergoing the H2→H3 phase transition. X-ray photoelectron spectroscopy (XPS) reveals NMC composition-dependent evolution of surface lattice oxygen and restructured surface layer composition between charged and discharged states. These findings add mechanistic depth to the role of discharge as an active driver of interfacial degradation and provide new insights into its composition dependence.

25 ENERGY STORAGE
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WorkPublishedSource identifierSource
Understanding Discharge‐Driven Growth of Cathode Impedance in Ni‐Rich NMC Cathodes2026-06-26AC05-00OR22725osti
2013 VTO Annual Merit Review Presentations Electrochemical Storage [Slides]2013-05-13DOE/CM-3046osti
A program to develop a high-energy density primary battery with a minimum of 200 watt hours per pound of total battery weight Quarterly report, 1 Oct. - 31 Dec. 19661967-01-1519670010583nasa
Research and development of the dry tape battery concept Quarterly report, 9 Jun. - 9 Sep. 19661966-12-3119670012740nasa
A program to develop a high-energy density primary battery with a minimum of 200 watt hours per pound of total battery weight Seventh quarterly report, Jan. 1 - Mar. 31, 19661966-04-1519660015774nasa
A program to develop a high-energy density primary battery with a minimum of 200 watt hours per pound of total battery weight Sixth quarterly report, Oct. 1 - Dec. 31, 19651966-01-1519660006850nasa
Development of the dry tape battery concept1965-12-0119660002839nasa
Research and development of a capacity nonaqueous secondary battery Fourth quarterly report, Jul. - Sep. 19651965-11-1119660006498nasa
Research and development of the dry tape battery concept Quarterly report no. 1, 9 Jun. - 8 Sep. 19651965-10-0819660002880nasa
A program to develop a high-energy density primary battery with a minimum of 200 watt hours per pound of total battery weight fourth quarterly report, apr. - jun., 19651965-08-0919650020223nasa
Development of a high temperature battery first quarterly technical report1964-10-2019650001439nasa
Development of the dry tape battery concept quarterly report no. 1, 24 jan. - 30 apr. 19641964-05-2019650025500nasa

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