The green poly-lysine enantiomers as electron-extraction layers for high performance organic photovoltaics
Journal
Journal of Materials Chemistry C
Journal Volume
7
Journal Issue
40
Pages
12572-12579
Date Issued
2019
Author(s)
Abstract
In this study, we first revealed green materials-poly-lysines (poly-l-lysine and poly-l-lysine blend poly-d-lysine)-as electron-extraction layers (EELs) in organic photovoltaics (OPVs). The distinct configurations of poly-lysine enantiomers were verified by conducting zeta potential analysis, and their work function (WF)-tuning capabilities for indium tin oxide (ITO) were affirmed by ultraviolet photoelectron spectroscopy (UPS). These two poly-lysine groups, with different arrangements of the amino groups that built up different surface dipoles on the ITO substrate, altered the surface energy and WF of ITO. Poly-l-lysine optimized the WF of ITO for efficient carrier transport in the OPV device, in the electron transporting layer-free OPV devices, and we observed a high power conversion efficiency (PCE) of 10.01% in the device configuration of ITO/interlayer/BHJ/MoO3/Ag. As the first examination of poly-lysine enantiomers for OPVs, we provided the WF-tuning functions-increasing polarity as an interfacial dipole is formed at the corresponding interface, and discovered a promising interfacial material possessing high efficiency and benefitting from a long-term stability to perform in a stable PCE with about 80% of its original PCE remaining after continuous heat and light treatment for 400 hours. This journal is © The Royal Society of Chemistry.
SDGs
Other Subjects
Enantiomers; Extraction; Tin oxides; Tuning; Ultraviolet photoelectron spectroscopy; Uninterruptible power systems; Device configurations; Electron extraction; Electron transporting layer; High power conversion; Interfacial dipoles; Long term stability; Organic photovoltaics; Zeta potential analysis; Amino acids
Type
journal article