Dynamic behaviour of interphases and its implication on high-energy-density cathode materials in lithium-ion batteries

Динамическое поведение межфазных слоёв и его значение для катодных материалов с высокой плотностью энергии в литий-ионных аккумуляторах
Wangda Li, Andrei Dolocan, Pilgun Oh, Hugo Celio, Suhyeon Park, Jaephil Cho, Arumugam Manthiram
2017-04-26

carbon black additivescathode-electrolyte interphasehigh-voltage lithium-ion batteriesnickel-rich layered oxidesecondary-ion mass spectrometry
Undesired electrode-electrolyte interactions prevent the use of many high-energy-density cathode materials in practical lithium-ion batteries. Efforts to address their limited service life have predominantly focused on the active electrode materials and electrolytes. Here an advanced three-dimensional chemical and imaging analysis on a model material, the nickel-rich layered lithium transition-metal oxide, reveals the dynamic behaviour of cathode interphases driven by conductive carbon additives (carbon black) in a common nonaqueous electrolyte. Region-of-interest sensitive secondary-ion mass spectrometry shows that a cathode-electrolyte interphase, initially formed on carbon black with no electrochemical bias applied, readily passivates the cathode particles through mutual exchange of surface species. By tuning the interphase thickness, we demonstrate its robustness in suppressing the deterioration of the electrode/electrolyte interface during high-voltage cell operation. Our results provide insights on the formation and evolution of cathode interphases, facilitating development of in situ surface protection on high-energy-density cathode materials in lithium-based batteries.
1
A cathode–electrolyte interphase forms spontaneously on carbon black without electrochemical bias and passivates cathode particles through mutual surface-species exchange.
2
The findings identify carbon-additive-mediated interphase evolution as a route toward in situ surface protection for high-energy-density lithium-battery cathodes.
3
Three-dimensional chemical and imaging analyses reveal that conductive carbon black drives dynamic cathode-interphase behavior in nickel-rich layered lithium transition-metal oxides.
4
Tuning interphase thickness produces a robust protective layer that suppresses electrode/electrolyte-interface deterioration during high-voltage operation.

Cathode interphases in nickel-rich layered lithium transition-metal oxide electrodes with conductive carbon black in a nonaqueous electrolyte

Dynamic formation, mutual surface-species exchange, thickness-dependent robustness, and passivation of cathode interphases during high-voltage operation

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2017-04-26
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Wangda Li
Andrei Dolocan
Pilgun Oh
Hugo Celio
Suhyeon Park
Jaephil Cho
Arumugam Manthiram
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