4.8 Article

Enhanced hydrogen storage capacity and reversibility of LiBH4 nanoconfined in the densified zeolite-templated carbon with high mechanical stability

期刊

NANO ENERGY
卷 15, 期 -, 页码 244-255

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.nanoen.2015.04.023

关键词

Hydrogen storage; LiBH4; Nanoconfinement; System volumetric capacity; Mechanical stability

资金

  1. National High Technology Research a Development Program of China [2012AA051503]
  2. National Natural Science Foundation of China [51471151, 51171173]
  3. Program for Innovative Research Team in University of Ministry of Education of China [IRT13037]
  4. Zhejiang Provincial Science Et Technology Program of China [2014C31134]
  5. Fundamental Research Funds for the Central Universities [2015QNA4010]

向作者/读者索取更多资源

Nanoconfining hydrogen storage material inside nanopores has emerged as an intriguing strategy to influence the material characteristics but also sacrifices part of system gravimetric and volumetric hydrogen capacity. Herein, we tackle these two challenges by nanoconfining LiBH4 into a new scaffold, zeolite-templated carbon (ZTC), with high porosity and excellent mechanical stability to form a densified nanoconfinement system. After nanoconfinement of LiBH4 and 750 MPa densification, the nanocomposite begins to release hydrogen at 194 degrees C, 181 degrees C lower than that of the bulk LiBHd. The rehydrogenation of LiBH4 achieves under mild conditions with improved cycle stability. Moreover, the activation energy of hydrogen desorption is dramatically reduced by 60.4 kJ mol(-1), coupled with the foaming effect of desorption almost eliminated. More importantly, the over-infiltrated LiBH4@ZTC systems are capable of maintaining their good hydrogen storage performances, which is attributed to the interface/surface effect between hydrides and scaffolds. With ultra-high pressure densification and high uploading amount of LiBH4, the nanoconfined composite achieves an exceptional gravimetric capacity of 6.92 wt% and volumetric capacity of 75.43 g L-1. These findings add new insights in the development of nanoconfinement systems with enhanced hydrogen storage capacity. (C) 2015 Elsevier Ltd. All rights reserved.

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