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Strain relaxation and multidentate anchoring in n-type perovskite transistors and logic circuits

Nature Electronics [2024]
Bukke Ravindra Naik, Syzgantseva Olga A., A. Syzgantseva Maria, Aidinis Konstantinos, Soultati Anastasia, Verykios Apostolis, Tountas Marinos, Psycharis Vassilis, Alshahrani Thamraa, Ullah Habib, P. Zorba Leandros, C. Vougioukalakis Georgios, Wang Jianxiao, Bao Xichang, Jang Jin, Nazeeruddin Mohammad Khaja, Vasilopoulou Maria, Mohd Yusoff Abd. Rashid bin
ABSTRACT

The engineering of tin halide perovskites has led to the development of p-type transistors with field-effect mobilities of over 70 cm 2  V −1  s −1 . However, due to their background hole doping, these perovskites are not suitable for n-type transistors. Ambipolar lead halide perovskites are potential candidates, but their defective nature limits electron mobilities to around 3–4 cm 2  V −1  s −1 , which makes the development of all-perovskite logic circuits challenging. Here we report formamidinium lead iodide perovskite n-type transistors with field-effect mobilities of up to 33 cm 2  V −1  s −1 measured in continuous bias mode. This is achieved through strain relaxation of the perovskite lattice using a methylammonium chloride additive, followed by suppression of undercoordinated lead through tetramethylammonium fluoride multidentate anchoring. Our approach stabilizes the alpha phase, balances strain and improves surface morphology, crystallinity and orientation. It also enables low-defect perovskite–dielectric interfaces. We use the transistors to fabricate unipolar inverters and eleven-stage ring oscillators.

MATERIALS

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