posted on 2022-03-01, 17:03authored byYongfeng Ni, Xuan Liu, Yang Liu, Zhendong Feng, Dandan Tu, Xin Guo, Can Li
Ternary blending based on an alloy-like
model has been proved as
an efficient strategy for high-efficiency organic solar cells (OSCs).
However, the third component that possesses excellent miscibility
with host materials in the alloy-like model may trigger adverse effects
for the active layer, especially at a high doping ratio. In this work,
we propose a new concept of nonalloy model for the ternary OSCs in
which the third component presents moderate miscibility with the acceptor
and distributes at the interspace between donor and acceptor domains.
The nonalloy model is constructed based on the PM6:Y6 system, and
a Y6 analogue (BTP-MCA) is synthesized as the third component. The
BTP-MCA can maintain initial excellent morphology of the active layer
and enhance the morphological stability by acting as a frame around
the host materials. As a result, ternary OSCs based on the PM6:Y6:BTP-MCA
blend exhibit an impressive efficiency of 17.0% with a high open-circuit
voltage of 0.87 V. Moreover, the devices present a high doping tolerance
(keeping high efficiency with a doping ratio of 50%) and improved
stability. This work indicates that the nonalloy model can be a promising
method to fabricate efficient and stable ternary OSCs apart from the
conventional alloy-like model.