Sn‐Driven Grain Boundary Elimination for Single‐Crystalline Ni‐Rich Cathodes with Superior High‐Voltage Stability in Lithium‐Ion Batteries

ABSTRACT Single‐crystalline Ni‐rich cathodes are regarded as promising candidates for high‐energy‐density lithium‐ion batteries (LIBs), providing superior mechanical and structural stability compared to polycrystalline counterparts. In this work, we present a low‐temperature grain‐boundary‐elimination approach to synthesize single‐crystalline LiNi 0.9 Co 0.08 Al 0.02 O 2 (SC‐NCA) through Sn‐assisted modification. Beyond enabling low‐temperature synthesis, the integrated Sn serves a dual‐protective function. Bulk Sn doping robustly pins lattice oxygen and mitigates harmful irreversible phase transitions, preserving structural integrity. Simultaneously, the residual formation of a highly conductive Li 2 SnO 3 surface layer accelerates Li + diffusion kinetics and robustly passivates the cathode‐electrolyte interphase against parasitic degradation. Consequently, this dual‐site modified SC‐Sn‐NCA90 cathode exhibits exceptional electrochemical performance, delivering a remarkable capacity retention of 86.7% after 500 cycles at 1 C (2.8–4.5 V), vastly eclipsing the 40.8% retention of the polycrystalline benchmark. This work presents a low‐temperature strategy for synthesizing SC‐NCA combined with Sn doping, facilitating the development of Ni‐rich layered cathodes for high‐energy‐density LIBs.

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Publication Details

Journal
Advanced Science
Published
2026-09-16
DOI
https://doi.org/10.1002/advs.77769
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
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article

Sn‐Driven Grain Boundary Elimination for Single‐Crystalline Ni‐Rich Cathodes with Superior High‐Voltage Stability in Lithium‐Ion Batteries

Delai Qian, Guomeng Xie, Xiaoteng Liu, Shun Lu et al.
Advanced Science
Advancements in Battery Materials
article

Sn‐Driven Grain Boundary Elimination for Single‐Crystalline Ni‐Rich Cathodes with Superior High‐Voltage Stability in Lithium‐Ion Batteries

Delai Qian, Guomeng Xie, Xiaoteng Liu, Shun Lu, Ruiwu Li
article en

Abstract

ABSTRACT Single‐crystalline Ni‐rich cathodes are regarded as promising candidates for high‐energy‐density lithium‐ion batteries (LIBs), providing superior mechanical and structural stability compared to polycrystalline counterparts. In this work, we present a low‐temperature grain‐boundary‐elimination approach to synthesize single‐crystalline LiNi 0.9 Co 0.08 Al 0.02 O 2 (SC‐NCA) through Sn‐assisted modification. Beyond enabling low‐temperature synthesis, the integrated Sn serves a dual‐protective function. Bulk Sn doping robustly pins lattice oxygen and mitigates harmful irreversible phase transitions, preserving structural integrity. Simultaneously, the residual formation of a highly conductive Li 2 SnO 3 surface layer accelerates Li + diffusion kinetics and robustly passivates the cathode‐electrolyte interphase against parasitic degradation. Consequently, this dual‐site modified SC‐Sn‐NCA90 cathode exhibits exceptional electrochemical performance, delivering a remarkable capacity retention of 86.7% after 500 cycles at 1 C (2.8–4.5 V), vastly eclipsing the 40.8% retention of the polycrystalline benchmark. This work presents a low‐temperature strategy for synthesizing SC‐NCA combined with Sn doping, facilitating the development of Ni‐rich layered cathodes for high‐energy‐density LIBs.

Advanced Science
Harbin Institute of Technology (CN), Northumbria University (GB), Chongqing Institute of Green and Intelligent Technology (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 20%
Advancements in Battery Materials
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Sn‐Driven Grain Boundary Elimination for Single‐Crystalline Ni‐Rich Cathodes with Superior High‐Voltage Stability in Lithium‐Ion Batteries — Delai Qian, Guomeng Xie, et al. · Advanced Science (2026) | TGRS Research Map | TGRS