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An Efficient Approach to Fabricate Air-Stable Perovskite Solar Cells via Addition of a Self-Polymerizing Ionic Liquid.

Rui XiaXiao-Xin GaoYi ZhangNikita DrigoValentin I E QuelozFarzaneh Fadaei TiraniRosario ScopellitiZhangjun HuangXiaodong FangSachin KingeZhaofu FeiCristina Roldán-CarmonaMohammad Kahaj Khaja NazeeruddinPaul J Dyson
Published in: Advanced materials (Deerfield Beach, Fla.) (2020)
Despite the excellent photovoltaic properties achieved by perovskite solar cells at the laboratory scale, hybrid perovskites decompose in the presence of air, especially at high temperatures and in humid environments. Consequently, high-efficiency perovskites are usually prepared in dry/inert environments, which are expensive and less convenient for scale-up purposes. Here, a new approach based on the inclusion of an in situ polymerizable ionic liquid, 1,3-bis(4-vinylbenzyl)imidazolium chloride ([bvbim]Cl), is presented, which allows perovskite films to be manufactured under humid environments, additionally leading to a material with improved quality and long-term stability. The approach, which is transferrable to several perovskite formulations, allows efficiencies as high as 17% for MAPbI3 processed in air % relative humidity (RH) ≥30 (from an initial 15%), and 19.92% for FAMAPbI3 fabricated in %RH ≥50 (from an initial 17%), providing one of the best performances to date under similar conditions.
Keyphrases
  • ionic liquid
  • perovskite solar cells
  • high efficiency
  • room temperature
  • solar cells
  • carbon nanotubes