Dissecting the Role of the Hole-Transport Layer in Cu 2 AgBiI 6 Solar Cells: An Integrated Experimental and Theoretical Study.
Basheer Al-AnesiG Krishnamurthy GrandhiAdriana PecoraroVipinraj SugathanAna Belén Muñoz-GarcíaMichele PavonePaola VivoPublished in: The journal of physical chemistry. C, Nanomaterials and interfaces (2024)
Perovskite-inspired materials (PIMs) provide low-toxicity and air-stable photo-absorbers for several possible optoelectronic devices. In this context, the pnictogen-based halides Cu 2 AgBiI 6 (CABI) are receiving increasing attention in photovoltaics. Despite extensive studies on power conversion efficiency and shelf-life stability, nearly no attention has been given to the physicochemical properties of the interface between CABI and the hole transport layer (HTL), which can strongly impact overall cell operations. Here, we address this specific interface with three polymeric HTLs: poly( N , N '-bis(4-butylphenyl)- N , N '-bis(phenyl)benzidine) (poly-TPD), thiophene-(poly(3-hexylthiophene)) (P3HT), and poly(bis(4-phenyl)(2,4,6-trimethylphenyl)amine) (PTAA). Our findings reveal that devices fabricated with poly-TPD and P3HT outperform the commonly used Spiro-OMeTAD in terms of device operational stability, while PTAA exhibits worse performances. Density functional theory calculations unveil the electronic and chemical interactions at the CABI-HTL interfaces, providing new insights into observed experimental behaviors. Our study highlights the importance of addressing the buried interfaces in PIM-based devices to enhance their overall performance and stability.