Ionically Gated Small Molecule OPV: Interfacial doping of Charge collector and Transport layer
Danila S. Saranin, Abolfazl Mahmoodpoor, Pavel M. Voroshilov,, Constantin R. Simovski, and Anvar A. Zakhidov

TL;DR
This paper demonstrates that ionic gating of MWCNTs in small molecule OPVs significantly enhances performance by reversible doping, enabling thicker ETLs, improved charge collection, and nearly 50-fold efficiency increase.
Contribution
It introduces a novel ionic gating technique for interfacial doping in small molecule OPVs, improving stability and efficiency beyond previous methods.
Findings
Power conversion efficiency increased nearly 50 times.
Thick ETLs up to 200 nm are enabled, enhancing durability.
Internal built-in field improves exciton dissociation and charge transport.
Abstract
We demonstrate an improvement in the performance of organic photovoltaic (OPV) systems based on small molecules by ionic gating via controlled reversible n-doping of multi-wall carbon nanotube (MWCNT) coated on fullerenes ETL: C60 and C70. Such electric double layer charging (EDLC) doping, achieved by ionic liquid (IL) charging, allows tuning the electronic concentration in MWCNT and in the fullerene planar acceptor layers, increasing it by orders of magnitude. This leads to decreasing the series and increasing the shunt resistances of OPV and allows to use of thick (up to 200 nm) ETLs, increasing the durability and stability of OPV. Two stages of OPV enhancement are described, upon the increase of gating bias Vg: at small (or even zero) Vg the extended interface of IL and porous transparent MWCNT is charged by gating, and the fullerene charge collector is significantly improved,…
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