Issue 8, 2014

Optimization of molecular organization and nanoscale morphology for high performance low bandgap polymer solar cells

Abstract

Rational design and synthesis of low bandgap (LBG) polymers with judiciously tailored HOMO and LUMO levels have emerged as a viable route to high performance polymer solar cells with power conversion efficiencies (PCEs) exceeding 10%. In addition to engineering the energy-level of LBG polymers, the photovoltaic performance of LBG polymer-based solar cells also relies on the device architecture, in particular the fine morphology of the photoactive layer. The nanoscale interpenetrating networks composed of nanostructured donor and acceptor phases are the key to providing a large donor–acceptor interfacial area for maximizing the exciton dissociation and offering a continuous pathway for charge transport. In this Review Article, we summarize recent strategies for tuning the molecular organization and nanoscale morphology toward an enhanced photovoltaic performance of LBG polymer-based solar cells.

Graphical abstract: Optimization of molecular organization and nanoscale morphology for high performance low bandgap polymer solar cells

Article information

Article type
Review Article
Submitted
27 Nov 2013
Accepted
18 Dec 2013
First published
02 Jan 2014

Nanoscale, 2014,6, 3984-3994

Optimization of molecular organization and nanoscale morphology for high performance low bandgap polymer solar cells

M. He, M. Wang, C. Lin and Z. Lin, Nanoscale, 2014, 6, 3984 DOI: 10.1039/C3NR06298H

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