4.8 Article

Surface ReOx Sites on Al2O3 and Their Molecular Structure Reactivity Relationships for Olefin Metathesis

Journal

ACS CATALYSIS
Volume 5, Issue 3, Pages 1432-1444

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/cs5016518

Keywords

catalysts; rhenia; alumina; olefin metathesis; spectroscopy; DFT

Funding

  1. U.S. DOE Basic Energy Sciences [FG02-93ER14350]
  2. U.S. DOE [DE- FG02-03ER15476]
  3. U.S.DOE [DE-FG02-05ER15688]
  4. Academic Computer Centre CYFRONET AGH [MNiSW/SGI3700/PK/003/2013, MNiSW/SGI4700/PK/003/2013, MNiSW/IBM_BC_HS21/PK/003/2013]

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Supported ReOx/Al2O3 catalysts were investigated for propylene metathesis as a function of surface rhenia loading and extensively characterized with in situ UV-vis, Raman, IR, XANES/EXAFS, and isotopic O-18-O-16 exchange studies. The experimental studies were complemented with DFT calculations using realistic models of the alumina surface. The surface ReOx sites were found to be isolated surface dioxo (O=)(2)ReO2 species, which represent the most stable surface rhenia structures on alumina as shown by DFT. Two distinct surface ReO4 species, however, were found to be present and only slightly differ in their bridging Re-O-Al bond lengths brought about by anchoring at different sites of the Al2O3 support. The deformed surface ReO4-I species preferentially anchor at more basic mu(1) AlIV and mu(1) AlVI sites and are difficult to activate for propylene metathesis. The surface ReO4-II species are formed at more acidic mu(2) AlVI and mu(3) AlVI sites and are the catalytic active sites for propylene metathesis. The surface ReO4-II sites were readily activated by propylene while the deformed surface ReO4-I sites were almost not affected by propylene, with only a few sites being activated. The steady-state propylene metathesis reaction rates are much higher for the surface ReO4-II sites than the deformed surface ReO4-I sites. The formation of the less reactive deformed surface ReO4-I species could be blocked by occupation of the mu 1 AlIV sites with sacrificial surface TaOx species that resulted in catalysts exclusively containing the more active surface ReO4-II sites on alumina. This is the first study to demonstrate that the surface ReO4-II sites are the precursors for the catalytic active sites for propylene metathesis by supported ReO4/Al2O3 catalysts and to molecularly design olefin metathesis catalysts that exclusively contain isolated surface ReO4-II sites.

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