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Author

  • Piersimoni, Fortunato (2) (remove)

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  • 2015 (1)
  • 2014 (1)

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  • bulk heterojunction (1)
  • lifetime (1)
  • organic photovoltaics (1)
  • phase separation (1)
  • thermal stability (1)

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Toward bulk heterojunction polymer solar cells with thermally stable active layer morphology (2014)
Cardinaletti, Ilaria ; Kesters, Jurgen ; Bertho, Sabine ; Conings, Bert ; Piersimoni, Fortunato ; Lutsen, Laurence ; Nesladek, Milos ; Van Mele, Bruno ; Van Assche, Guy ; Vandewal, Koen ; Salleo, Alberto ; Vanderzande, Dirk ; Maes, Wouter ; Manca, Jean V.
When state-of-the-art bulk heterojunction organic solar cells with ideal morphology are exposed to prolonged storage or operation at elevated temperatures, a thermally induced disruption of the active layer blend can occur, in the form of a separation of donor and acceptor domains, leading to diminished photovoltaic performance. Toward the long-term use of organic solar cells in real-life conditions, an important challenge is, therefore, the development of devices with a thermally stable active layer morphology. Several routes are being explored, ranging from the use of high glass transition temperature, cross-linkable and/or side-chain functionalized donor and acceptor materials, to light-induced dimerization of the fullerene acceptor. A better fundamental understanding of the nature and underlying mechanisms of the phase separation and stabilization effects has been obtained through a variety of analytical, thermal analysis, and electro-optical techniques. Accelerated aging systems have been used to study the degradation kinetics of bulk heterojunction solar cells in situ at various temperatures to obtain aging models predicting solar cell lifetime. The following contribution gives an overview of the current insights regarding the intrinsic thermally induced aging effects and the proposed solutions, illustrated by examples of our own research groups. (C) The Authors. Published by SPIE under a Creative Commons Attribution 3.0 Unported License.
Charge Transfer Absorption and Emission at ZnO/Organic Interfaces (2015)
Piersimoni, Fortunato ; Schlesinger, Raphael ; Benduhn, Johannes ; Spoltore, Donato ; Reiter, Sina ; Lange, Ilja ; Koch, Norbert ; Vandewal, Koen ; Neher, Dieter
We investigate hybrid charge transfer states (HCTS) at the planar interface between a-NPD and ZnO by spectrally resolved electroluminescence (EL) and external quantum efficiency (EQE) measurements. Radiative decay of HCTSs is proven by distinct emission peaks in the EL spectra of such bilayer devices in the NIR at energies well below the bulk a-NPD or ZnO emission. The EQE spectra display low energy contributions clearly red-shifted with respect to the a-NPD photocurrent and partially overlapping with the EL emission. Tuning of the energy gap between the ZnO conduction band and a-NPD HOMO level (E-int) was achieved by modifying the ZnO surface with self-assembled monolayers based on phosphonic acids. We find a linear dependence of the peak position of the NIR EL on E-int, which unambiguously attributes the origin of this emission to radiative recombination between an electron on the ZnO and a hole on a-NPD. In accordance with this interpretation, we find a strictly linear relation between the open-circuit voltage and the energy of the charge state for such hybrid organicinorganic interfaces.
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