Zhenwen Pan
University of Vermont
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Featured researches published by Zhenwen Pan.
Journal of Physical Chemistry Letters | 2015
Naveen Rawat; Zhenwen Pan; Lane Manning; Cody Lamarche; Ishviene Cour; Randall L. Headrick; Rory Waterman; Arthur R. Woll; Madalina Furis
The lack of long range order in organic semiconductor thin films prevents the unveiling of the complete nature of excitons in optical experiments, because the diffraction limited beam diameters in the bandgap region far exceed typical crystalline grain sizes. Here we present spatially-, temporally- and polarization-resolved dual photoluminescence/linear dichroism microscopy experiments that investigate exciton states within a single crystalline grain in solution-processed phthalocyanine thin films. These experiments reveal the existence of a delocalized singlet exciton, polarized along the high mobility axis in this quasi-1D electronic system. The strong delocalized {\pi} orbitals overlap controlled by the molecular stacking along the high mobility axis is responsible for breaking the radiative recombination selection rules. Using our linear dichroism scanning microscopy setup we further established a rotation of molecules (i.e. a structural phase transition) that occurs above 100 K prevents the observation of this exciton at room temperature.We present spatially-, temporally- and polarization-resolved dual photoluminescence/linear dichroism microscopy experiments that investigate the correlation between long-range order and the nature of exciton states in solution-processed phthalocyanine thin films. The influence of grain boundaries and disorder is absent in these films because typical grain sizes are 3 orders of magnitude larger than focused excitation beam diameters. These experiments reveal the existence of a delocalized singlet exciton, polarized along the high mobility axis in this quasi-1D electronic system. The strong delocalized π orbitals overlap, controlled by the molecular stacking along the high mobility axis, is responsible for breaking the radiative recombination selection rules. Using our linear dichroism scanning microscopy setup, we further established that a rotation of molecules (i.e., a structural phase transition) that occurs above 100 K prevents the observation of this exciton at room temperature.
Nature Communications | 2015
Zhenwen Pan; Naveen Rawat; Ishviene Cour; Lawrence W. Manning; Randall L. Headrick; Madalina Furis
Exploration of optical properties of organic crystalline semiconductors thin films is challenging due to submicron grain sizes and the presence of numerous structural defects, disorder and grain boundaries. Here we report on the results of combined linear dichroism (LD)/ polarization-resolved photoluminescence (PL) scanning microscopy experiments that simultaneously probe the excitonic radiative recombination and the molecular ordering in solution-processed metal-free phthalocyanine crystalline thin films with macroscopic grain sizes. LD/PL images reveal the relative orientation of the singlet exciton transition dipoles at the grain boundaries and the presence of a localized electronic state that acts like a barrier for exciton diffusion across the grain boundary. We also show how this energy barrier can be entirely eliminated through the optimization of deposition parameters that results in films with large grain sizes and small-angle boundaries. These studies open an avenue for exploring the influence of long-range order on exciton diffusion and carrier transport.
Scientific Reports | 2015
Naveen Rawat; Zhenwen Pan; Cody Lamarche; Anthony Wetherby; Rory Waterman; Takahisa Tokumoto; Judy Cherian; Randall L. Headrick; Stephen McGill; Madalina Furis
The origins of spin exchange in crystalline thin films of Copper Octabutoxy Phthalocyanine (Cu-OBPc) are investigated using Magnetic Circular Dichroism (MCD) spectroscopy. These studies are made possible by a solution deposition technique which produces highly ordered films with macroscopic grain sizes suitable for optical studies. For temperatures lower than 2 K, the contribution of a specific state in the valence band manifold originating from the hybridized lone pair in nitrogen orbitals of the Phthalocyanine ring, bears the Brillouin-like signature of an exchange interaction with the localized d-shell Cu spins. A comprehensive MCD spectral analysis coupled with a molecular field model of a σπ − d exchange analogous to sp-d interactions in Diluted Magnetic Semiconductors (DMS) renders an enhanced Zeeman splitting and a modified g-factor of −4 for the electrons that mediate the interaction. These studies define an experimental tool for identifying electronic states involved in spin-dependent exchange interactions in organic materials.
Physical Review B | 2010
Boqian Yang; James Schneeloch; Zhenwen Pan; Madalina Furis; Marc Achermann
Organic Electronics | 2012
Ishviene Cour; Zhenwen Pan; Lyndelle Toni LeBruin; Martin A. Case; Madalina Furis; Randall L. Headrick
Bulletin of the American Physical Society | 2012
Lane Manning; Naveen Rawat; Zhenwen Pan; Cody Lamarche; Ishviene Cour; Randy Headrick; Madalina Furis
Bulletin of the American Physical Society | 2012
Naveen Rawat; Zhenwen Pan; Lane Manning; Anthony Wetherby; Rory Waterman; Randy Headrick; Madalina Furis
Bulletin of the American Physical Society | 2012
Zhenwen Pan; Naveen Rawat; Cody Lamarche; Takahisa Tokumoto; Anthony Wetherby; Rory Waterman; Randy Headrick; S. McGill; Madalina Furis
arXiv: Mesoscale and Nanoscale Physics | 2011
Zhenwen Pan; Ishviene Cour; Lane Manning; Randall L. Headrick; Madalina Furis
Bulletin of the American Physical Society | 2011
Zhenwen Pan; Cody Lamarche; Ishviene Cour; Naveen Rawat; Lane Manning; Randall L. Headrick; Madalina Furis