Li-S batteries: challenges, achievements and opportunities

H Raza, S Bai, J Cheng, S Majumder, H Zhu… - Electrochemical Energy …, 2023 - Springer
To realize a low-carbon economy and sustainable energy supply, the development of
energy storage devices has aroused intensive attention. Lithium-sulfur (Li-S) batteries are …

Challenges and promises of lithium metal anode by soluble polysulfides in practical lithium–sulfur batteries

LP Hou, XQ Zhang, BQ Li, Q Zhang - Materials Today, 2021 - Elsevier
The lithium–sulfur (Li–S) battery has raised great expectations as a next-generation high-
energy-density energy storage system. The multielectron dissolution–precipitation redox …

High‐performance microsized Si anodes for lithium‐ion batteries: insights into the polymer configuration conversion mechanism

Q Wang, M Zhu, G Chen, N Dudko, Y Li… - Advanced …, 2022 - Wiley Online Library
Microsized silicon particles are desirable Si anodes because of their low price and abundant
sources. However, it is challenging to achieve stable electrochemical performances using a …

Lithium‐ion desolvation induced by nitrate additives reveals new insights into high performance lithium batteries

W Wahyudi, V Ladelta, L Tsetseris… - Advanced Functional …, 2021 - Wiley Online Library
Electrolyte additives have been widely used to address critical issues in current metal (ion)
battery technologies. While their functions as solid electrolyte interface forming agents are …

Constructing Multifunctional Interphase between Li1.4Al0.4Ti1.6(PO4)3 and Li Metal by Magnetron Sputtering for Highly Stable Solid‐State Lithium Metal Batteries

X Hao, Q Zhao, S Su, S Zhang, J Ma… - Advanced Energy …, 2019 - Wiley Online Library
Due to high ionic conductivity and low cost, Li1. 4Al0. 4Ti1. 6 (PO4) 3 (LATP) has emerged
as a promising solid‐state electrolyte for next‐generation lithium (Li) metal solid‐state …

Multifactorial engineering of biomimetic membranes for batteries with multiple high-performance parameters

M Wang, AE Emre, JY Kim, Y Huang, L Liu… - Nature …, 2022 - nature.com
Abstract Lithium–sulfur (Li–S) batteries have a high specific capacity, but lithium polysulfide
(LPS) diffusion and lithium dendrite growth drastically reduce their cycle life. High discharge …

Anode interface engineering and architecture design for high‐performance lithium–sulfur batteries

Y Zhao, Y Ye, F Wu, Y Li, L Li, R Chen - Advanced Materials, 2019 - Wiley Online Library
Abstract Lithium–sulfur (Li–S) batteries are considered as one of the most promising options
to realize rechargeable batteries with high energy capacity. Previously, research has mainly …

Nickel foam coated by Ni nanoparticle-decorated 3D nanocarbons as a freestanding host for high-performance lithium–sulfur batteries

QY Zhou, L Tan, TB Lv, MC Li, JJ Zhang… - … Applied Materials & …, 2023 - ACS Publications
Nanocarbons (NCs) consisting of carbon nanotubes (CNTs) and carbon nanofibers (CNFs)
were coated on the surface of nickel foam (NF) via a chemical vapor deposition method. The …

Lithiophilic polymer interphase anchored on laser-punched 3D holey Cu matrix enables uniform lithium nucleation leading to super-stable lithium metal anodes

J Jiang, Z Pan, Z Kou, P Nie, C Chen, Z Li, S Li… - Energy Storage …, 2020 - Elsevier
Metallic lithium is regarded as the “Holy Grail” among various anode materials for the next-
generation rechargeable batteries. Unfortunately, the inhomogeneous Li deposition and …

Morphological reversibility of modified Li-based anodes for next-generation batteries

F Sun, D Zhou, X He, M Osenberg, K Dong… - ACS Energy …, 2019 - ACS Publications
Although a great variety of strategies to suppress Li dendrite have been proposed for lithium
metal batteries (LMBs), a deeper understanding of the factors playing a crucial role during …