We propose the development of Ni-stabilizing electrolyte additives to fundamentally prevent the degradation of Ni-rich layered cathode systems in lithium-ion batteries because unstable surface Ni and the dissolved Ni2+ are the major problems of those systems. The Ni2+-affinity is investigated as a key factor of the Ni-stabilizing additives. However, when providing a noble function to the electrolyte additive, the redox stability of the additives should be also understood. Thus, in addition to the intrinsic oxidation energy, the protonation and dehydrogenation energies of the additive molecules are calculated to determine the H-transfer-driven electrolyte oxidation. The Li+-complexation is considered to model the electrolyte reduction. We in...
The realization of high performance Ni-rich layered cathodes remains a challenge because of the mult...
Li-rich layered oxides are considered as one of the most promising cathode materials for secondary l...
Capacity loss of lithium ion batteries develop over the period of a few years at room temperature an...
Ni-rich cathodes are the most promising candidates for realizing high-energy-density Li-ion batterie...
The effectiveness of surface coatings in improving the stability and cycling performance of cathodes...
Li-rich layered oxide materials are promising candidates for high-energy Li-ion batteries. They show...
The introduction of a trimethylsilyl (TMS) motif in electrolyte additives is regarded as an effectiv...
There are several routes available for improving the energy density of lithium-based batteries. One ...
In pursuit of higher energy density in lithium-ion batteries (LIBs), a most promising approach focus...
In this paper, we propose a new electrolyte additive 3-Isocyanatopropyltriethoxysilane (IPTS) to imp...
A practical solution is presented to increase the stability of 4.45 V LiCoO2 via high-temperature Ni...
The thriving energy-storage market has been motivating enormous efforts to advance the state-of-art ...
© 2022 Elsevier B.V.LiNixMnyCozO2 (x + y + z = 1, x > 0.6) Ni-rich layered structures are the most i...
Motivated by new applications including electric vehicles and the smart grid, interest in advanced l...
Herein we address the key challenge towards the practical use of high-voltage lithium-ion cathode ma...
The realization of high performance Ni-rich layered cathodes remains a challenge because of the mult...
Li-rich layered oxides are considered as one of the most promising cathode materials for secondary l...
Capacity loss of lithium ion batteries develop over the period of a few years at room temperature an...
Ni-rich cathodes are the most promising candidates for realizing high-energy-density Li-ion batterie...
The effectiveness of surface coatings in improving the stability and cycling performance of cathodes...
Li-rich layered oxide materials are promising candidates for high-energy Li-ion batteries. They show...
The introduction of a trimethylsilyl (TMS) motif in electrolyte additives is regarded as an effectiv...
There are several routes available for improving the energy density of lithium-based batteries. One ...
In pursuit of higher energy density in lithium-ion batteries (LIBs), a most promising approach focus...
In this paper, we propose a new electrolyte additive 3-Isocyanatopropyltriethoxysilane (IPTS) to imp...
A practical solution is presented to increase the stability of 4.45 V LiCoO2 via high-temperature Ni...
The thriving energy-storage market has been motivating enormous efforts to advance the state-of-art ...
© 2022 Elsevier B.V.LiNixMnyCozO2 (x + y + z = 1, x > 0.6) Ni-rich layered structures are the most i...
Motivated by new applications including electric vehicles and the smart grid, interest in advanced l...
Herein we address the key challenge towards the practical use of high-voltage lithium-ion cathode ma...
The realization of high performance Ni-rich layered cathodes remains a challenge because of the mult...
Li-rich layered oxides are considered as one of the most promising cathode materials for secondary l...
Capacity loss of lithium ion batteries develop over the period of a few years at room temperature an...