TY - JOUR
T1 - Engineering of Surface Environment of Pd Nanoparticle Catalysts on Carbon Support with Pyrene-Thiol Ligands for Semihydrogenation of Alkynes
AU - Yoshii, Takeharu
AU - Umemoto, Daiki
AU - Kuwahara, Yasutaka
AU - Mori, Kohsuke
AU - Yamashita, Hiromi
N1 - Funding Information:
The present work was supported by the Grants-in-Aid for Scientific Research (KAKENHI no. 26220911) from the Japan Society for the Promotion of Science (JSPS). T.Y. thanks JSPS for a Research Fellowship for Young Scientists (no. 18 J20246). Y.K., K.M., and H.Y. thank the MEXT program "Elements Strategy Initiative for Catalysts & Batteries (ESICB)" . This work was also supported in part by the Cooperative Research Program of "Network Joint Research Center for Materials and Devices" (no. 20191071). XAFS spectra were recorded at the beamline 01B1 station in SPring-8, JASRI, Harima Japan (proposal nos. 2018B1082 and 2018B1185).
Publisher Copyright:
Copyright © 2019 American Chemical Society.
PY - 2019/10/16
Y1 - 2019/10/16
N2 - A new type of pyrene-thiol derivative-modified Pd nanoparticle (NP) catalyst on a carbon black support for the efficient semihydrogenation of alkynes to alkenes is reported herein. Colloidal Pd NPs surrounded by pyrene-thiol modifiers were prepared using the two-phase Brust method followed by impregnation of carbon black materials. Based on the structural characterization of the prepared catalyst (PyC12S-Pd/VC) by NMR, UV-vis, FT-IR, TEM, HAADF-STEM, Pd K-edge XAFS, XRD, N2 adsorption, and XPS, we show that highly dispersed Pd NPs are immobilized on the catalysts via Ï€-πinteraction between pyrene groups bound to the Pd NPs and carbon black supports. PyC12S-Pd/VC efficiently catalyzes the alkyne semihydrogenation reaction while maintaining high alkene selectivity; an alkene selectivity of 94% is attained at 98% conversion after 5 h of reaction, and the selectivity was retained around 80% in 10 h of reaction. This performance is superior to that of a catalyst without pyrene groups and that of a commercial Lindlar catalyst. The steric hindrance of pyrene groups restricts access of the substrates to Pd NP surfaces, suppressing the unfavorable overhydrogenation of alkenes to alkanes, which is revealed by the solvent and substrate dependency on the catalytic performance and a DFT calculation study. Furthermore, the high selectivity and stability of PyC12S-Pd/VC are caused by the strong interaction between pyrene groups and carbon supports, which prevents the separation of pyrene modifiers and the leaching or sintering of Pd NPs during the catalytic reaction. It is demonstrated that the combination of Pd NPs, pyrene-thiol modifiers, and carbon supports offers high activity, alkene selectivity, and stability in the semihydrogenation reaction.
AB - A new type of pyrene-thiol derivative-modified Pd nanoparticle (NP) catalyst on a carbon black support for the efficient semihydrogenation of alkynes to alkenes is reported herein. Colloidal Pd NPs surrounded by pyrene-thiol modifiers were prepared using the two-phase Brust method followed by impregnation of carbon black materials. Based on the structural characterization of the prepared catalyst (PyC12S-Pd/VC) by NMR, UV-vis, FT-IR, TEM, HAADF-STEM, Pd K-edge XAFS, XRD, N2 adsorption, and XPS, we show that highly dispersed Pd NPs are immobilized on the catalysts via Ï€-πinteraction between pyrene groups bound to the Pd NPs and carbon black supports. PyC12S-Pd/VC efficiently catalyzes the alkyne semihydrogenation reaction while maintaining high alkene selectivity; an alkene selectivity of 94% is attained at 98% conversion after 5 h of reaction, and the selectivity was retained around 80% in 10 h of reaction. This performance is superior to that of a catalyst without pyrene groups and that of a commercial Lindlar catalyst. The steric hindrance of pyrene groups restricts access of the substrates to Pd NP surfaces, suppressing the unfavorable overhydrogenation of alkenes to alkanes, which is revealed by the solvent and substrate dependency on the catalytic performance and a DFT calculation study. Furthermore, the high selectivity and stability of PyC12S-Pd/VC are caused by the strong interaction between pyrene groups and carbon supports, which prevents the separation of pyrene modifiers and the leaching or sintering of Pd NPs during the catalytic reaction. It is demonstrated that the combination of Pd NPs, pyrene-thiol modifiers, and carbon supports offers high activity, alkene selectivity, and stability in the semihydrogenation reaction.
KW - Pd nanoparticles
KW - heterogeneous catalysis
KW - pyrene-thiol ligands
KW - semihydrogenation
KW - surface modification
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U2 - 10.1021/acsami.9b12470
DO - 10.1021/acsami.9b12470
M3 - Article
C2 - 31538475
AN - SCOPUS:85073169343
SN - 1944-8244
VL - 11
SP - 37708
EP - 37719
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 41
ER -