Dependence of nanocrystal dimensionality on the polymer nanomorphology, anisotropic optical absorption, and carrier transport in P3HT:TiO2 bulk heterojunctions
Journal
Journal of Physical Chemistry C
Journal Volume
116
Journal Issue
47
Pages
25081-25088
Date Issued
2012
Author(s)
Lin C.-C.
Ho P.-H.
Huang C.-L.
Du C.-H.
Yu C.-C.
Chen H.-L.
Yeh Y.-C.
Li S.-S.
Lee C.-K.
Pao C.-W.
Chang C.-P.
Chu M.-W.
Abstract
It is known that the nanoscale morphological organization of donors or acceptors in bulk heterojunction (BHJ) solar cells is critical to device performance and strongly affects carrier generation, transporting, and collection. This work demonstrates the dependence of nanocrystal dimensionality and organization on the polymer nanomorphology in P3HT:TiO2 hybrid bulk heterojunctions, which were revealed using grazing-incidence X-ray diffraction (GIXRD) using a synchrotron X-ray beam and electron tomography. We further performed a multiscale molecular dynamic simulation to understand the morphological orientation of a polymer blended with TiO2 nanoparticles (NPs) or nanorods (NRs). The correlation between polymer nanoscale morphology and the dimensionality and anisotropy of nanocrystals in P3HT:TiO2 hybrids clearly explains the observation of different optical absorption and carrier transport behaviors in directions perpendicular or parallel to the film substrate. Our results provide crucial information toward understanding the interplay between nanocrystal dimensionality and polymer morphology in developing organic/inorganic hybrid electronic devices such as thin film transistors (TFTs) or photovoltaics (PVs). © 2012 American Chemical Society.
SDGs
Other Subjects
Bulk heterojunction; Carrier generation; Device performance; Electron tomography; Electronic device; Film substrates; Grazing-incidence X-ray diffraction; Multiscales; Nano scale; Nanomorphologies; Nanoscale morphology; Organic/Inorganic hybrids; Photovoltaics; Polymer morphology; Synchrotron x rays; Thin-film transistor (TFTs); TiO; Transport behavior; Anisotropy; Computer simulation; Electric impedance tomography; Light absorption; Molecular dynamics; Morphology; Nanocrystals; Nanorods; Nanotechnology; Thin film transistors; Titanium dioxide; X ray diffraction; Heterojunctions
Type
journal article