A printing
process for the fabrication of perovskite solar cells
(PSCs) exhibits promising future application in the photovoltaic industry
due to its low-cost and eco-friendly preparation. In mesoscopic carbon-based
PSCs, however, compared to conventional ones, the hole-transport-layer-free
PSCs often lead to inefficient hole extraction. Here, we used liquid
metal (LM, Galinstan) as an interface modifier material in combination
with a carbon electrode. Considering the high conductivity and room-temperature
fluidity, it is found that LMs are superior in improving hole extraction
and, more importantly, LMs tend to be reserved at the interface between
ZrO2 and carbon for enhancing the contact property. Correspondingly,
the carrier transfer resistance was decreased at the carbon/perovskite
interface. As optimized content, the triple mesoscopic PSCs based
on mixed-cation perovskite with a power conversion efficiency of 13.51%
was achieved, involving a 26% increase compared to those without LMs.
This work opens new techniques for LMs in optoelectronics and printing