Water‐stable lithium metal anodes with ultrahigh‐rate capability enabled by a hydrophobic graphene architecture

L Dong, L Nie, W Liu - Advanced materials, 2020 - Wiley Online Library
Implementing the utilization of lithium metal in actual processing and application conditions
is essential for next‐generation high‐energy batteries at a practical level. However, the …

[PDF][PDF] Water-Stable Lithium Metal Anodes with Ultrahigh-Rate Capability Enabled by a Hydrophobic Graphene Architecture

L Dong, L Nie, W Liu - Adv. Mater, 2020 - researchgate.net
Dr. L. Dong, L. Nie, Prof. W. Liu School of Physical Science and Technology ShanghaiTech
University Shanghai 201210, China E-mail: liuwei1@ shanghaitech. edu. cn The ORCID …

Water‑Stable Lithium Metal Anodes with Ultrahigh‑Rate Capability Enabled by a Hydrophobic Graphene Architecture

L Dong, L Nie, W Liu - Advanced Materials, 2020 - ui.adsabs.harvard.edu
Implementing the utilization of lithium metal in actual processing and application conditions
is essential for next‑generation high‑energy batteries at a practical level. However, the …

Water-Stable Lithium Metal Anodes with Ultrahigh-Rate Capability Enabled by a Hydrophobic Graphene Architecture

L Dong, L Nie, W Liu - Advanced materials (Deerfield …, 2020 - pubmed.ncbi.nlm.nih.gov
Implementing the utilization of lithium metal in actual processing and application conditions
is essential for next-generation high-energy batteries at a practical level. However, the …

Water-Stable Lithium Metal Anodes with Ultrahigh-Rate Capability Enabled by a Hydrophobic Graphene Architecture.

L Dong, L Nie, W Liu - Advanced Materials (Deerfield Beach, Fla.), 2020 - europepmc.org
Implementing the utilization of lithium metal in actual processing and application conditions
is essential for next-generation high-energy batteries at a practical level. However, the …