Development of Polymer Systems with High Electron Mobility for Photovoltaic Applications Jie Hu, Dong Zhang, Shi Jin, Stephen Z.D. Cheng and Frank W. Harris The Maurice Morton Institute of Polymer Science The University of Akron Akron, OH
To develop materials with high electron mobility for photovoltaic applications Objective
Utilization of nitrogen-containing heterocyclic structures Poly(pyridinium salts) Poly(quinoxalines) Approach
Specific objective of this work is to develop discotic/planar liquid crystalline compounds that display high electron mobilities. Discotic liquid crystalline compounds have been prepared that exhibit high hole mobilities. Adam, D.; Schumacher, P.; Simmerer, J.; Haussling, L.; Siemersmeyer, K.; Etzbach, K.H.; Ringsdorf, H.; Haarer, D. Nature 1994, 371, 141. Discotic Liquid Cyrstalline Compounds
Preparation of Target Compounds
Synthesis of 4,5,9,10- Tetraone Pyrene
Synthesis of 4,5-Diamino- 1,2-bisalkoxy Benzenes
The transition temperatures (°C) were determined by DSC at 10 °C/min, the phase types were suggested by PLM and WAXD. CompoundRPhase transition 3an-C 10 H 21 K LC I 3bn-C 11 H 23 K LC I 3cn-C 14 H 29 K I 3d2-methylhexyl K I 3e3,7-dimethyloctyl K I > Phase Transition Compounds of 3a-e
100 m The picture was taken at 261 o C cooling from the isotropic phase PLM Micrograph of 3a
Current Work Structural modifications to lower transition temperatures and increase electron affinity.