TY - JOUR
T1 - Constructed Pt active domain to catalyze acetylene hydrochlorination efficiently
AU - Wu, Chengkun
AU - Jiang, Guohui
AU - Liang, Haixia
AU - Li, Jian
AU - Su, Yaqiong
AU - Yang, Wenchao
AU - Zhang, Jinli
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/2/25
Y1 - 2025/2/25
N2 - In industry, liquid acetone is commonly used to store acetylene. The oxygen atoms in acetone molecules are more electronegative, whereas the C atoms in acetylene molecules are more electronegative, creating an electrical difference that results in electrostatic interactions between acetone and acetylene molecules. This interaction enhances the intermolecular forces between acetone and acetylene, suggesting that the presence of a C[dbnd]O structure may promote the adsorption and activation of acetylene molecules. In this study, a series of phenyl-based ligands containing X = O (X = C, N, S, and P) structures were used to prepare Pt-Lx/AC catalysts via the impregnation method. Performance evaluation revealed that the Pt-L5/AC catalyst, with 4-nitrosophenol (L5) as the ligand, exhibited the best catalytic performance. System characterization and theoretical calculations indicated that the N = O structure in the L5 ligand enhances the electronic structure of the catalyst's active center, while the benzene ring further optimizes the catalytic reaction microenvironment. Theoretical results also show that H2PtCl6 molecules with 4-nitrosophenol ligands have significant advantages in acetylene hydrochlorination kinetics, likely due to the dispersion of the electron density of the Pt core by the L5 ligands. The addition of chlorine atoms to the C[tbnd]C bond of C2H2 molecules releases a substantial amount of energy, making the reaction irreversible and more thermodynamically favorable, and by using HCL molecules to dynamically compensate the active domain of Pt-based catalyst, the performance of Pt-based catalyst can be improved.
AB - In industry, liquid acetone is commonly used to store acetylene. The oxygen atoms in acetone molecules are more electronegative, whereas the C atoms in acetylene molecules are more electronegative, creating an electrical difference that results in electrostatic interactions between acetone and acetylene molecules. This interaction enhances the intermolecular forces between acetone and acetylene, suggesting that the presence of a C[dbnd]O structure may promote the adsorption and activation of acetylene molecules. In this study, a series of phenyl-based ligands containing X = O (X = C, N, S, and P) structures were used to prepare Pt-Lx/AC catalysts via the impregnation method. Performance evaluation revealed that the Pt-L5/AC catalyst, with 4-nitrosophenol (L5) as the ligand, exhibited the best catalytic performance. System characterization and theoretical calculations indicated that the N = O structure in the L5 ligand enhances the electronic structure of the catalyst's active center, while the benzene ring further optimizes the catalytic reaction microenvironment. Theoretical results also show that H2PtCl6 molecules with 4-nitrosophenol ligands have significant advantages in acetylene hydrochlorination kinetics, likely due to the dispersion of the electron density of the Pt core by the L5 ligands. The addition of chlorine atoms to the C[tbnd]C bond of C2H2 molecules releases a substantial amount of energy, making the reaction irreversible and more thermodynamically favorable, and by using HCL molecules to dynamically compensate the active domain of Pt-based catalyst, the performance of Pt-based catalyst can be improved.
KW - Acetylene hydrochlorination
KW - Phenyl ligands
KW - Pt-based catalysts
KW - Theoretical calculation
KW - X = O (X = C, N, S and P) structures
UR - https://www.scopus.com/pages/publications/85214491299
U2 - 10.1016/j.apcata.2025.120113
DO - 10.1016/j.apcata.2025.120113
M3 - 文章
AN - SCOPUS:85214491299
SN - 0926-860X
VL - 692
JO - Applied Catalysis A: General
JF - Applied Catalysis A: General
M1 - 120113
ER -