Related Experiment Video
Updated: Sep 15, 2026

Synthesis of Ionic Liquid Based Electrolytes, Assembly of Li-ion Batteries, and Measurements of Performance at High Temperature
Published on: December 20, 2016
A Multifunctional Mesoporous Janus Separator With Optimized Mass Transport Regulation Enabling 800-Cycle
Hailiang Mu1,2, Anlong Liu3,4, Kun Luo1
1Jiangsu Province Engineering Research Centre of Intelligent Manufacturing Technology for the New Energy Vehicle Power Battery, School of Materials Science &Engineering, Changzhou University, Changzhou, People's Republic of China.
Abstract:
Lithium-oxygen batteries (LOBs) deliver ultrahigh theoretical specific energy but suffer from limited cycle life caused by lithium dendrite growth, anode corrosion, and cathode passivation. Developing interfacially compatible functional separators is an effective solution, yet coordinating fast ion conduction and multi-species mass transport regulation remains challenging. We design an asymmetric multifunctional mesoporous Janus separator (mGP), consisting of a ∼ 3.16 nm mesoporous silica (mSiO2) layer and dense, hydrophobic, mechanically tough polyurethane (PU). Via steric confinement, the mSiO2 nanochannels optimize mass transport behavior: they homogenize Li+ flux and accelerate ion transport, suppress intermediate crossover to alleviate the shuttle effect and cathode passivation. The PU layer prevents dendrite piercing, buffers lithium volume variation, and suppresses water- and intermediate-triggered anode corrosion via hydrophobicity. Li||Li symmetric cells with mGP run stably for 1300 h at 0.1 mA cm-2. LOBs based on mGP achieve exceptional cycling stability: over 800 cycles at 1000 mAh g-1 and 100 cycles at 3000 mAh g-1, outperforming traditional glass fiber (GF) separators. This work provides a feasible strategy for constructing high-performance long-cycle LOBs through deliberate mass transport optimization.

