TY - JOUR AU - Zijian Cai AU - Huiwen Ji AU - Yang Ha AU - Jue Liu AU - Deok-Hwang Kwon AU - Yaqian Zhang AU - Alexander Urban AU - Emily E Foley AU - Raynald Giovine AU - Hyunchul Kim AU - Zhengyan Lun AU - Tzu-Yang Huang AU - Guobo Zeng AU - Yu Chen AU - Jingyang Wang AU - Bryan D McCloskey AU - Mahalingam Balasubramanian AU - Raphaële J Clément AU - Wanli Yang AU - Gerbrand Ceder AB -

Conventional Li-ion cathode materials are dominated by well-ordered structures, in which Li and transition metals occupy distinct crystallographic sites. We show in this paper that profoundly new degrees of freedom for the optimization of electrochemical properties may be accessed if controllable cation disorder is introduced. In a class of high-capacity spinel-type cathode materials, we identify cation to anion ratio in synthesis as a key parameter for tuning the structure continuously from a well-ordered spinel, through a partially ordered spinel, to rocksalt. We find that the varying degree of cation disorder modifies the voltage profile, rate capability, and charge-compensation mechanism in a rational and predictable way. Our results indicate that spinel-type order is most beneficial for achieving high-rate performance as long as the cooperative 8a to 16c phase transition is suppressed, while more rocksalt-like disorder facilitates O redox, which can increase capacity. Our findings reveal an important tuning handle for achieving high energy and power in the vast space of partially ordered cathode materials.

BT - Matter DA - 12/2021 DO - 10.1016/j.matt.2021.10.013 IS - 12 LA - eng N2 -

Conventional Li-ion cathode materials are dominated by well-ordered structures, in which Li and transition metals occupy distinct crystallographic sites. We show in this paper that profoundly new degrees of freedom for the optimization of electrochemical properties may be accessed if controllable cation disorder is introduced. In a class of high-capacity spinel-type cathode materials, we identify cation to anion ratio in synthesis as a key parameter for tuning the structure continuously from a well-ordered spinel, through a partially ordered spinel, to rocksalt. We find that the varying degree of cation disorder modifies the voltage profile, rate capability, and charge-compensation mechanism in a rational and predictable way. Our results indicate that spinel-type order is most beneficial for achieving high-rate performance as long as the cooperative 8a to 16c phase transition is suppressed, while more rocksalt-like disorder facilitates O redox, which can increase capacity. Our findings reveal an important tuning handle for achieving high energy and power in the vast space of partially ordered cathode materials.

PY - 2021 SP - 3897 EP - 3916 ST - Matter T2 - Matter TI - Realizing continuous cation order-to-disorder tuning in a class of high-energy spinel-type Li-ion cathodes UR - https://linkinghub.elsevier.com/retrieve/pii/S2590238521005129 VL - 4 SN - 25902385 ER -