Theoretical design of catalysts for the heterolytic splitting of H2

被引:18
作者
Maj, Lukasz
Grochala, Wojciech
机构
[1] Warsaw Univ, Dept Chem, Lab Intermol Interact, PL-02093 Warsaw, Poland
[2] Warsaw Univ, Interisciplinary Ctr Math & Comp Modeling, Lab Technol Novel Funct Mat, PL-02106 Warsaw, Poland
关键词
D O I
10.1002/adfm.200500891
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Here, we briefly review recent advances in H-2 storage technologies relying on mixed proton-hydride and destabilized hydride materials. We establish a general relationship across different materials: the higher the effective H content, the higher the temperatures needed to completely desorb H-2. Nevertheless, several systems show promising thermodynamics for H-2 desorption; however, the desorption kinetics still needs to be improved by the use of appropriate catalysts. Prompted by the importance of heterolytically splitting stable dihydrogen molecules for proton-hydride technologies, we attempt to theoretically design novel H-2 transfer catalysts. We focus mainly on M4NM4H8 catalysts (M = V, Ti, Zr, Hf, and Nm = Si, C, B, N), which should be able to preserve their functionality in the strongly reducing environment of a H-2 storage system. We are able to determine the energy of H-2 detachment from these molecules, as well as the associated energy barriers. In order to optimize the properties of the catalysts, we use isoelectronic atom-by-atom substitutions, vary the valence electron count, and borrow the concept of near-surface alloys from extended solids and apply it to molecular systems. We are able to obtain control over the enthalpy and electronic barriers for H-2 detachment. Molecules with the coordinatively unsaturated > Ti=Si < unit exhibit particularly favorable thermodynamics and show unusually small electronic barriers for H-2 detachment (> 0.27 eV) and attachment (> 0.07 eV). These and homologous ZrSi frameworks may serve as novel H-2 transfer catalysts for use with emerging lightweight hydrogen storage materials holding 5.0-10.4 wt % hydrogen, such as Li2NH,Li2Mg(NH)(2), Mg2Si, and LiH/MgB2 (discharged forms). Catalytic properties are also anticipated for appropriate defects on the surfaces and crystal edges of solid Ti and Zr silicides, and for Ti=Si ad-units chemisorbed on other support materials.
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收藏
页码:2061 / 2076
页数:16
相关论文
共 69 条
[1]   Identification of destabilized metal hydrides for hydrogen storage using first principles calculations [J].
Alapati, SV ;
Johnson, JK ;
Sholl, DS .
JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (17) :8769-8776
[2]   ENERGY-ADJUSTED ABINITIO PSEUDOPOTENTIALS FOR THE 2ND AND 3RD ROW TRANSITION-ELEMENTS [J].
ANDRAE, D ;
HAUSSERMANN, U ;
DOLG, M ;
STOLL, H ;
PREUSS, H .
THEORETICA CHIMICA ACTA, 1990, 77 (02) :123-141
[3]   Destabilization of LiBH4 by mixing with LiNH2 [J].
Aoki, M ;
Miwa, K ;
Noritake, T ;
Kitahara, G ;
Nakamori, Y ;
Orimo, S ;
Towata, S .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2005, 80 (07) :1409-1412
[4]   Thermal decomposition of B-N-H compounds investigated by using combined thermoanalytical methods [J].
Baitalow, F ;
Baumann, J ;
Wolf, G ;
Jaenicke-Rössler, K ;
Leitner, G .
THERMOCHIMICA ACTA, 2002, 391 (1-2) :159-168
[5]   Thermal decomposition of polymeric aminoborane (H2BNH2)x under hydrogen release [J].
Baumann, J ;
Baitalow, E ;
Wolf, G .
THERMOCHIMICA ACTA, 2005, 430 (1-2) :9-14
[6]   Diverse world of unconventional hydrogen bonds [J].
Belkova, NV ;
Shubina, ES ;
Epstein, LM .
ACCOUNTS OF CHEMICAL RESEARCH, 2005, 38 (08) :624-631
[7]   Toward a more detailed understanding of oxidative-addition mechanisms: Combined experimental and quantum-chemical study of the insertion of titanium atoms into C-H, Si-H, and Sn-H bonds [J].
Bihlmeier, A ;
Greene, TM ;
Himmel, HJ .
ORGANOMETALLICS, 2004, 23 (10) :2350-2361
[8]   Ti-doped alkali metal aluminium hydrides as potential novel reversible hydrogen storage materials [J].
Bogdanovic, B ;
Schwickardi, M .
JOURNAL OF ALLOYS AND COMPOUNDS, 1997, 253 (1-2) :1-9
[9]  
Calhorda M. J., 2004, J AM CHEM SOC, V126, P11954
[10]   Metal hydrides for vehicular applications: The state of the art [J].
Chandra, D ;
Reilly, JJ ;
Chellappa, R .
JOM, 2006, 58 (02) :26-32