activity
20182021
most citedStack Pressure Considerations for Room Temperature All-Solid-State Lithium Metal Batteries

598 citations · 641 across the 2 of their papers we have counts for

collaborators

5 papers

cond-mat.mtrl-sci202143 cited

Near-Room Temperature Ferromagnetic Insulating State in Highly Distorted LaCoO2.5 with CoO5 Square Pyramids

Qinghua Zhang, Ang Gao, Fanqi Meng +9

Dedicated control of oxygen vacancies is an important route to functionalizing complex oxide films. It is well-known that tensile strain significantly lowers the oxygen vacancy for…

cond-mat.mtrl-sci2020

Unveiling the Stable Nature of the Solid Electrolyte Interphase between Lithium Metal and LiPON via Cryogenic Electron Microscopy

Diyi Cheng, Thomas Andrew Wynn, Xuefeng Wang +11

The solid electrolyte interphase (SEI) is regarded as the most complex but the least understood constituent in secondary batteries using liquid and solid electrolytes. The nanostru…

physics.app-ph2019

Glassy Li Metal Anode for High-Performance Rechargeable Li Batteries

Xuefeng Wang, Gorakh Pawar, Yejing Li +11

Controlling nanostructure from molecular, crystal lattice to the electrode level remains as arts in practice, where nucleation and growth of the crystals still require more fundame…

physics.app-ph2019598 cited

Stack Pressure Considerations for Room Temperature All-Solid-State Lithium Metal Batteries

Jean-Marie Doux, Han Nguyen, Darren H. S. Tan +6

All-solid-state batteries are expected to enable batteries with high energy density with the use of lithium metal anodes. Although solid electrolytes are believed to be mechanicall…

cond-mat.mtrl-sci2018

Quantifying Inactive Lithium in Lithium Metal Batteries

Chengcheng Fang, Jinxing Li, Minghao Zhang +16

Inactive lithium (Li) formation is the immediate cause of capacity loss and catastrophic failure of Li metal batteries. However, the chemical component and the atomic level structu…