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April 5, 2026Science Advances3 citationsOpen Access

Machine learning–assisted discovery of outside-in structure Ni-rich cathode with high performance

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GMGuihong MaoYWYing WangTYTengyu Yao

Key Points

  • The research aims to enhance the performance of Ni-rich cathodes in lithium-ion batteries by improving their structural stability.
  • Utilized machine learning to identify effective dopants (Al 3+ and Sn 4+) for Ni-rich cathodes.
  • Developed an outside-in architecture with a Sn-rich surface layer and Al-doped bulk.
  • Examined the effects of dopants on interfacial degradation and lattice strain.
  • Achieved 96.9% capacity retention after 200 cycles with minimal voltage fade.
  • Enhanced interfacial stability and structural reversibility through the new architecture.
  • Weakened superexchange interactions and reduced Li─Ni disorder via doping.

Abstract

Ni-rich oxides have emerged as leading cathode candidates for lithium-ion batteries because of high specific energy, lower cost, and improved sustainability compared to cobalt-based materials. However, Ni-rich cathodes suffer from voltage and capacity degradation driven by anisotropic lattice strain and interfacial reconstruction. Here, we report a high-performance Ni-rich cathode featuring a robust outside-in architecture, achieved via machine learning–assisted identification of Al 3+ and Sn 4+ dopants. Through a competitive doping mechanism, these dopants form a Sn-rich rock-salt surface layer and a uniformly Al-doped bulk. This high-quality outside-in structure enhances interfacial stability and structural reversibility by mitigating cathode/electrolyte interfacial degradation and alleviating anisotropic lattice strain associated with H2/H3 phase coexistence. Moreover, nonmagnetic Al 3+ and Sn 4+ weaken superexchange interactions and suppress Li─Ni disorder. As a result, the cathode retains 96.9% of its capacity after 200 cycles with minimal voltage fade. These findings provide insights into the development of high-performance Ni-rich cathodes.

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Cite This Study

Mao et al. (2026) studied this question.

synapsesocial.com/papers/69d1fe68a79560c99a0a4b31https://doi.org/10.1126/sciadv.adz8130
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