4.8 Article

Delocalized Metal-Oxygen π-Redox Is the Origin of Anomalous Nonhysteretic Capacity in Li-Ion and Na-Ion Cathode Materials

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JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 143, 期 4, 页码 1908-1916

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AMER CHEMICAL SOC
DOI: 10.1021/jacs.0c10704

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资金

  1. Materials Research Science and Engineering Center at UCSB (MRSEC NSF) [DMR 1720256]
  2. Office of Science of the U.S. Department of Energy [DE-AC02-05CH11231]
  3. Center for Scientific Computing at UC Santa Barbara - National Science Foundation (NSF) Materials Research Science and Engineering Centers program through NSF [DMR 1720256, CNS 1725797]

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The study presents the first consistent mechanism of nonhysteretic oxidation beyond the transition metal limit, explaining the electrochemical and structural evolution of Na2Mn3O7 and Li2IrO3 model materials. The source of anomalous nonhysteretic capacity is identified as a pi-bonded metal-d and O-p orbital network, enabled by a unique resistance to transition metal migration. Voltage, accessible capacity, and structural evolution upon oxidation are shown to be collective properties of the pi-network rather than local bonding environments.
The anomalous capacity of Li-excess cathode materials has ignited a vigorous debate over the nature of the underlying redox mechanism, which promises to substantially increase the energy density of rechargeable batteries. Unfortunately, nearly all materials exhibiting this anomalous capacity suffer from irreversible structural changes and voltage hysteresis. Nonhysteretic excess capacity has been demonstrated in Na2Mn3O7 and Li2IrO3 , making these materials key to understanding the electronic, chemical, and structural properties that are necessary to achieve reversible excess capacity. Here, we use high-fidelity random-phase-approximation (RPA) electronic structure calculations and group theory to derive the first fully consistent mechanism of nonhysteretic oxidation beyond the transition metal limit, explaining the electrochemical and structural evolution of the Na(2)Mn(3)O(7 )and Li2IrO3 model materials. We show that the source of anomalous nonhysteretic capacity is a network of pi-bonded metal-d and O-p orbitals, whose activity is enabled by a unique resistance to transition metal migration. The pi-network forms a collective, delocalized redox center. We show that the voltage, accessible capacity, and structural evolution upon oxidation are collective properties of the pi-network rather than that of any local bonding environment. Our results establish the first rigorous framework linking anomalous capacity to transition metal chemistry and long-range structure, laying the groundwork for engineering materials that exhibit truly reversible capacity exceeding that of transition metal redox.

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