TY - GEN
T1 - Surface-induced Selective Formation of Biphenylene Dimers
AU - Guo, Dezhou
AU - Zeng, Zhiwen
AU - McEwen, Jean Sabin
AU - Zhu, Junfa
N1 - Publisher Copyright:
© 2021 American Institute of Chemical Engineers. All rights reserved.
PY - 2021
Y1 - 2021
N2 - We report an example that demonstrates the clear interdependence between surface-supported reactions and molecular adsorption configurations. Two biphenyl-based molecules with two and four bromine substituents, i.e. 2,2'-dibromo-biphenyl (DBBP) and 2,2',6,6'-tetrabromo-1,1'-biphenyl (TBBP), show completely different reaction pathways on a Ag(111) surface, leading to the selective formation of dibenzo[e,l]pyrene and biphenylene dimer, respectively. By combining low-temperature scanning tunneling microscopy, synchrotron radiation photoemission spectroscopy, and density functional theory calculations, we unravel the underlying reaction mechanism. After debromination, a bi-radical biphenyl can be stabilized by surface Ag adatoms, while a four-radical biphenyl undergoes spontaneous intramolecular annulation due to its extreme instability on Ag(111). Such different chemisorption-induced precursor states between DBBP and TBBP consequently lead to different reaction pathways after further annealing.
AB - We report an example that demonstrates the clear interdependence between surface-supported reactions and molecular adsorption configurations. Two biphenyl-based molecules with two and four bromine substituents, i.e. 2,2'-dibromo-biphenyl (DBBP) and 2,2',6,6'-tetrabromo-1,1'-biphenyl (TBBP), show completely different reaction pathways on a Ag(111) surface, leading to the selective formation of dibenzo[e,l]pyrene and biphenylene dimer, respectively. By combining low-temperature scanning tunneling microscopy, synchrotron radiation photoemission spectroscopy, and density functional theory calculations, we unravel the underlying reaction mechanism. After debromination, a bi-radical biphenyl can be stabilized by surface Ag adatoms, while a four-radical biphenyl undergoes spontaneous intramolecular annulation due to its extreme instability on Ag(111). Such different chemisorption-induced precursor states between DBBP and TBBP consequently lead to different reaction pathways after further annealing.
UR - http://www.scopus.com/inward/record.url?scp=85136181429&partnerID=8YFLogxK
M3 - Conference contribution
AN - SCOPUS:85136181429
T3 - AIChE Annual Meeting, Conference Proceedings
BT - 2021 AIChE Annual Meeting
PB - American Institute of Chemical Engineers
T2 - 2021 AIChE Annual Meeting
Y2 - 15 November 2021 through 19 November 2021
ER -