РОССИЙСКАЯ АКАДЕМИЯ НАУК УРАЛЬСКОЕ ОТДЕЛЕНИЕ ИНСТИТУТ ХИМИИ TBEPДОГО ТЕЛА |
|
|
06.03.2009 | Карта сайта Language |
|
Another key requirement for hydrogen storage systems is fast hydrogen charge and discharge rates to meet consumer expectations for refueling. Wang worked with ammonia borane, which has exceptional hydrogen storage capacity but a slow release rate. His milling technique speeds up hydrogen release. More than 8 wt% hydrogen can be released within four hours at 100°C, the lowest temperature obtained in any hydride system tested so far, says Wang. Low temperatures are important for controlling hydrogen release and spent fuel regeneration. 'Promoting hydrogen release by mechanically milling solid ammonia borane is not new,' explains Wang, 'but our studies show a completely different chemical activation mechanism that doesn't take place via alkali metal amidoboranes.' According to Wang, hydrogen is released through a destabilising solid phase reaction between the hydridic H- in magnesium hydride and the protonic H+ in ammonia borane. "The main barrier to using hydrogen as a vehicle fuel is the enormous storage volumes needed when it is carried in its molecular form" Schröder's structure is notable and its properties could help guide the search for new systems, says Matthew Rosseinsky, an expert on materials for energy storage and generation at the University of Liverpool, UK. Schröder says that the next challenge is to increase the strength of hydrogen binding within his material to enable storage at the higher, more ambient temperatures needed for automobile-based applications. For Wang, understanding how magnesium hydride destabilises ammonia borane is key to designing systems with better capacity and kinetic performance. Janet Crombie Link to journal articleExceptionally high H2 storage by a metal–organic polyhedral framework Promoted hydrogen release from ammonia borane by mechanically milling with magnesium hydride: a new destabilizing approach Also of interestStructure is key to superior hydrogen storage Researchers in the UK have revealed the structure of a compound they say could have a major impact on hydrogen storage. Getting hydrogen storage just right Hydrogen storage materials can be optimised with magnesium, say researchers in Spain. The holey grail of hydrogen storage A polymer riddled with tiny pores could lead to a novel hydrogen fuel tank, say chemists in the US
|
|
|
|
|
|||||||