A synergistic effect of the ion beam sputtered NiO x hole transport layer and MXene doping on inverted perovskite solar cells.
Muhammad Faraz Ud DinVladimir HeldSami UllahShima SousaniMaria OmastovaVojtech NadazdyAshin ShajiPeter ŠiffalovičMatej JergelEva MajkovaPublished in: Nanotechnology (2022)
The synergistic effect of high-quality NiO x hole transport layers (HTLs) deposited by ion beam sputtering on ITO substrates and the Ti 3 C 2 T x MXene doping of CH 3 NH 3 PbI 3 (MAPI) perovskite layers is investigated in order to improve the power conversion efficiency (PCE) of p-i-n perovskite solar cells (PSCs). The 18 nm thick NiO x layers are pinhole-free and exhibit large-scale homogeneous surface morphology as revealed by the atomic force microscopy (AFM). The grazing-incidence x-ray diffraction showed a 0.75% expansion of the face-centered cubic lattice, suggesting an excess of oxygen as is typical for non-stoichiometric NiO x . The HTLs were used to fabricate the PSCs with MXene-doped MAPI layers. A PSC with undoped MAPI layer served as a control. The size of MAPI polycrystalline grains increased from 430 ± 80 nm to 620 ± 190 nm on the doping, as revealed by AFM. The 0.15 wt% MXene doping showed a 14.3% enhancement in PCE as compared to the PSC with undoped MAPI. The energy-resolved electrochemical impedance spectroscopy revealed one order of magnitude higher density of defect states in the band gap of MXene-doped MAPI layer, which eliminated beneficial effect of reduced total area of larger MAPI grain boundaries, decreasing short-circuit current. The PCE improvement is attributed to a decrease of the work function from -5.26 eV to -5.32 eV on the MXene doping, which increased open-circuit voltage and fill factor.
Keyphrases
- perovskite solar cells
- atomic force microscopy
- high speed
- single molecule
- solar cells
- transition metal
- photodynamic therapy
- high resolution
- quantum dots
- room temperature
- gold nanoparticles
- minimally invasive
- highly efficient
- electron microscopy
- risk factors
- magnetic resonance imaging
- ionic liquid
- single cell
- dual energy
- visible light
- mass spectrometry
- monte carlo
- liquid chromatography
- solid state