TY - JOUR
T1 - Synthesis, characterization and evaluation of optical band gap of new semiconductor polymers with N-aryl- 2,5-diphenyl-pyrrole units
AU - Monroy, Olivia
AU - Fomina, Lioudmila
AU - Sánchez-Vergara, María Elena
AU - Vázquez-Hernández, Giovanna Angélica
AU - Alexandrova, Larissa
AU - Gaviño, Ruben
AU - Rumsh, Lev
AU - Zolotukhin, Mikhail G.
AU - Salcedo, Roberto
N1 - Publisher Copyright:
© 2021
PY - 2021/12/5
Y1 - 2021/12/5
N2 - We used chemical modification to obtain new polymers that contain pyrrole units in the main chain, with electron-withdrawing groups acting as potential organic semiconductors, by means of chemical modification of the diacetylene-containing precursors. These were prepared by oxidative coupling of terminal diacetylenes or by superelectrophilic polycondensation of diphenoxydiacetylene with isatin. Diacetylenic fragments in the precursors reacted with aromatic amines that bore electron-withdrawing substituents in the presence of copper chloride, in order to yield the corresponding diphenyl-pyrrole polymers. These were then fully characterized by NMR, IR and thermal analysis. The molecular weights of the polymers were also determined by GPC. We used UV–vis spectroscopy to derive the optical band gap of the polymers. The band gap values of synthetized polymers can be modulated by modifying the position and type of substituent. Band gaps obtained in wafer form range from 1.35 to 2.8 eV; the range required for polymer semiconductors, if they are to be employed in optoelectronic devices.
AB - We used chemical modification to obtain new polymers that contain pyrrole units in the main chain, with electron-withdrawing groups acting as potential organic semiconductors, by means of chemical modification of the diacetylene-containing precursors. These were prepared by oxidative coupling of terminal diacetylenes or by superelectrophilic polycondensation of diphenoxydiacetylene with isatin. Diacetylenic fragments in the precursors reacted with aromatic amines that bore electron-withdrawing substituents in the presence of copper chloride, in order to yield the corresponding diphenyl-pyrrole polymers. These were then fully characterized by NMR, IR and thermal analysis. The molecular weights of the polymers were also determined by GPC. We used UV–vis spectroscopy to derive the optical band gap of the polymers. The band gap values of synthetized polymers can be modulated by modifying the position and type of substituent. Band gaps obtained in wafer form range from 1.35 to 2.8 eV; the range required for polymer semiconductors, if they are to be employed in optoelectronic devices.
KW - Band gap
KW - Diphenyl-pyrrole derivatives
KW - Polymer chemical modification
KW - Semiconductor wafers
UR - http://www.scopus.com/inward/record.url?scp=85109640671&partnerID=8YFLogxK
U2 - 10.1016/j.molstruc.2021.131012
DO - 10.1016/j.molstruc.2021.131012
M3 - Artículo
AN - SCOPUS:85109640671
SN - 0022-2860
VL - 1245
JO - Journal of Molecular Structure
JF - Journal of Molecular Structure
M1 - 131012
ER -