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BF 3 Adsorption on α-Cr 2 O 3 (1012): Probing the Lewis Basicity of Surface Oxygen Anions

Mark W. Abee, David F. Cox

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Abstract

Acid/base characterizations of metal oxide surfaces are used often to explain their catalytic behavior. BF 3, a strong Lewis acid, is used in this investigation as a probe molecule to interrogate the basicity of well-defined Cr 2 O 3 (101̄2) surfaces. BF 3 clearly probes differences in oxide ions of different coordination on Cr 2 O 3 (101̄2). The heat of adsorption of BF 3 shows that terminal chromyl oxygens are stronger Lewis bases than three-coordinate oxygen anions on the nearly stoichiometric surface. The trends in basicity found with BF 3 are the opposite of those found from the heat of adsorption of CO 2, a common probe molecule used to investigate the basicity of oxide surfaces. The use of BF 3 as a probe molecule is complicated by some dissociation and the slow build up of surface boron and fluorine during consecutive thermal desorption runs.

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What this paper is about

Acid/base characterizations of metal oxide surfaces are used often to explain their catalytic behavior. BF 3, a strong Lewis acid, is used in this investigation as a probe molecule to interrogate the basicity of well-defined Cr 2 O 3 (101̄2) surfaces. BF 3 clearly probes differences in oxide ions of different coordination on Cr 2 O 3 (101̄2). The heat of adsorption of BF 3 shows that terminal chromyl oxygens are stronger Lewis bases than three-coordinate oxygen anions on the nearly stoichiometric surface. The trends in basicity found with BF 3 are the opposite of those found from the heat of adsorption of CO 2, a common probe molecule used to investigate the basicity of oxide surfaces. The use of BF 3 as a probe molecule is complicated by some dissociation and the slow build up of surface boron and fluorine during consecutive thermal desorption runs.

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Available abstract

Acid/base characterizations of metal oxide surfaces are used often to explain their catalytic behavior. BF 3, a strong Lewis acid, is used in this investigation as a probe molecule to interrogate the basicity of well-defined Cr 2 O 3 (101̄2) surfaces. BF 3 clearly probes differences in oxide ions of different coordination on Cr 2 O 3 (101̄2). The heat of adsorption of BF 3 shows that terminal chromyl oxygens are stronger Lewis bases than three-coordinate oxygen anions on the nearly stoichiometric surface. The trends in basicity found with BF 3 are the opposite of those found from the heat of adsorption of CO 2, a common probe molecule used to investigate the basicity of oxide surfaces. The use of BF 3 as a probe molecule is complicated by some dissociation and the slow build up of surface boron and fluorine during consecutive thermal desorption runs.

Key concepts: Lewis acids and bases, Adsorption, Chemistry, Dissociation (chemistry), Oxide, Molecule, Inorganic chemistry, Stoichiometry

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