Energy & Environmental Science 2018-04-10

A highly stabilized nickel-rich cathode material by a nanoscale epitaxy control for high-energy lithium-ion batteries

Junhyeok Kim, Hyunsoo Ma, Hyungyeon Cha, Hyomyung Lee, Jaekyung Sung, Minho Seo, Pilgun Oh, M Park, Jaephil Cho

Index: 10.1039/C8EE00155C

Full Text: HTML

Abstract

Advanced surface engineering for the nickel-rich cathode materials greatly enhances structural/thermal stability. However, their application into the lithium-ion full-cell have still challenge such as unstable solid electrolyte interphase (SEI) layer on the anode. Herein, we reveal that the degradation of battery cycle life is caused by the release of divalent nickel ions from the LiNi0.8Co0.1Mn0.1O2 cathode and the formation of nickel metal particles in the graphite anode surface, deteriorating the anode SEI layer and its structural integrity. On the basis of this finding, we demonstrate a stable lithium-ion battery by modifying the cathode surface by creating nanostructured stabilizer with epitaxial structure that enhances the morphological robustness. During cycling, the nickel defect in the cathode is significantly suppressed, preventing nickel ion crossover. In particular, the anode SEI layer maintains uniform and dense structure, leading to outstanding cycle stability in the full-cell with capacity retention of ~86% after 400 cycles at 25°C.

Latest Articles:

Boosting the hydrogen evolution performance of ruthenium clusters through synergistic coupling with cobalt phosphide

2018-04-11

[10.1039/C7EE03603E]

Activation of Ultrathin SrTiO3 with Subsurface SrRuO3 for the Oxygen Evolution Reaction

2018-04-10

[10.1039/C8EE00210J]

Cadmium-free CuInS2/ZnS quantum dots as efficient and robust photosensitizers in combination with a molecular catalyst for visible light-driven H2 production in water

2018-04-10

[10.1039/C8EE00120K]

Synergism induced exceptional capacity and complete reversibility in Mg-Y thin films: enabling next generation metal hydride electrodes

2018-04-09

[10.1039/C7EE03628K]

Solid-State-Ligand-Exchange Free Quantum Dot Ink-based Solar Cells with Efficiency of 10.9%

2018-04-06

[10.1039/C8EE00278A]

More Articles...