Air-Stable and Low-Cost High-Voltage Hydrated Eutectic Electrolyte for High-Performance Aqueous Aluminum-Ion Rechargeable Battery with Wide-Temperature Range.
Xiansheng LuoRui WangLonghai ZhangZixiang LiuHongbao LiJianfeng MaoShilin ZhangJunnan HaoTengfei ZhouChao-Feng ZhangPublished in: ACS nano (2024)
Aqueous aluminum-ion batteries (AAIBs) are considered as a promising alternative to lithium-ion batteries due to their large theoretical capacity, high safety, and low cost. However, the uneven deposition, hydrogen evolution reaction (HER), and corrosion during cycling impede the development of AAIBs, especially under a harsh environment. Here, a hydrated eutectic electrolyte (AATH40) composed of Al(OTf) 3 , acetonitrile (AN), triethyl phosphate (TEP), and H 2 O was designed to improve the electrochemical performance of AAIBs in a wide temperature range. The combination of molecular dynamics simulations and spectroscopy analysis reveals that AATH40 has a less-water-solvated structure [Al(AN) 2 (TEP)(OTf) 2 (H 2 O)] 3+ , which effectively inhibits side reactions, decreases the freezing point, and extends the electrochemical window of the electrolyte. Furthermore, the formation of a solid electrolyte interface, which effectively inhibits HER and corrosion, has been demonstrated by X-ray photoelectron spectroscopy, X-ray diffraction tests, and in situ differential electrochemical mass spectrometry. Additionally, operando synchrotron Fourier transform infrared spectroscopy and electrochemical quartz crystal microbalance with dissipation monitoring reveal a three-electron storage mechanism for the Al//polyaniline full cells. Consequently, AAIBs with this electrolyte exhibit improved cycling stability within the temperature range of -10-50 °C. This present study introduces a promising methodology for designing electrolytes suitable for low-cost, safe, and stable AAIBs over a wide temperature range.
Keyphrases
- low cost
- ionic liquid
- ion batteries
- high resolution
- molecular dynamics simulations
- solid state
- mass spectrometry
- single molecule
- electron microscopy
- gold nanoparticles
- high intensity
- induced apoptosis
- liquid chromatography
- molecular docking
- dual energy
- molecularly imprinted
- genome wide
- computed tomography
- oxidative stress
- single cell
- electron transfer
- endoplasmic reticulum stress
- gas chromatography
- reduced graphene oxide
- solid phase extraction