| Literature DB >> 30950578 |
Sanghoon Kim1, Mario De Bruyn2, Johan G Alauzun1, Nicolas Louvain1,3, Nicolas Brun1, Duncan J Macquarrie2, Lorenzo Stievano1,3, P Hubert Mutin1, Laure Monconduit1,3, Bruno Boury1.
Abstract
A new strategy for the synthesis of mesoporous TiO2 @C nanocomposites through the direct mineralization of seaweed-derived alginic acid cryogel by TiCl4 through a solid/vapor reaction pathway is presented. In this synthesis, alginic acid cryogel can have multiple roles; i) mesoporous template, ii) carbon source, and iii) oxygen source for the TiO2 precursor, TiCl4 . The resulting TiO2 @alginic acid composite was transformed either into pure mesoporous TiO2 by calcination or into mesoporous TiO2 @C nanocomposites by pyrolysis. By comparing with a nonporous TiO2 @C composite, the importance of the mesopores on the performance of electrodes for lithium-ion batteries based on mesoporous TiO2 @C composite was clearly evidenced. In addition, the carbon matrix in the mesoporous TiO2 @C nanocomposite also showed electrochemical activity versus lithium ions, providing twice the capacity of pure mesoporous TiO2 or alginic acid-derived mesoporous carbon (A600). Given the simplicity and environmental friendliness of the process, the mesoporous TiO2 @C nanocomposite could satisfy the main prerequisites of green and sustainable chemistry while showing improved electrochemical performance as a negative electrode for lithium-ion batteries.Entities:
Keywords: TiO2; alginic acid; cryogel; lithium-ion battery; mesoporous
Year: 2019 PMID: 30950578 DOI: 10.1002/cssc.201900781
Source DB: PubMed Journal: ChemSusChem ISSN: 1864-5631 Impact factor: 8.928