Atomic-Scale Imaging and Nano-Scale Mapping of Cubic α-CsPbI 3 Perovskite Nanocrystals for Inverted Perovskite Solar Cells.
Somnath MahatoArup GhoraiAjoy MondalSanjeev Kumar SrivastavaMantu ModakShreyasi DasSamit Kumar RayPublished in: ACS applied materials & interfaces (2022)
Colloidal synthesized cubic α-CsPbI 3 perovskite nanocrystals having a smaller lattice constant ( a = 6.2315 Å) compared to the standard structure, and nanoscale mapping of their surfaces are reported to achieve superior photovoltaic performance under 45-55% humidity conditions. Atomic scale transmission electron microscopic images have been utilized to probe the precise arrangement of Cs, Pb, and I atoms in a unit cell of α-CsPbI 3 NCs, which is well supported by the VESTA structure. Theoretical calculation using density functional theory of our experimental structure reveals the realization of direct band to band transition with a lower band gap, a higher absorption coefficient, and stronger covalent bonding between the Pb and I atoms in the [PbI 6 ] 4- octahedral, as compared to reported standard structure. Nanoscale surface mapping using Kelvin probe force microscopy yielding contact potential difference (CPD) and conductive atomic force microscopy for current mapping have been employed on α-CsPbI 3 NCs films deposited on different DMSO doped PEDOT:PSS layers. The difference of CPD value under dark and light illumination suggests that the hole injection strongly depends on the interfaces with PEDOT:PSS layer. The carrier transport through grain interiors and grain boundaries in α-CsPbI 3 probed by the single-point c-AFM measurements reveal the excellent photosensitivity under the light conditions. Finally, inverted perovskite solar cells, employing α-CsPbI 3 NCs film as an absorber layer and PEDOT:PSS layer as a hole transport layer, have been optimized to achieve the highest power conversion efficiency of 10.6%, showing their potential for future earth abundant, low cost, and air stable inverted perovskite photovoltaic devices.
Keyphrases
- perovskite solar cells
- atomic force microscopy
- room temperature
- high resolution
- high speed
- single molecule
- solar cells
- density functional theory
- low cost
- quantum dots
- living cells
- high density
- single cell
- heavy metals
- high efficiency
- molecular dynamics
- optical coherence tomography
- ionic liquid
- deep learning
- cell therapy
- computed tomography
- stem cells
- molecular dynamics simulations
- human health
- pseudomonas aeruginosa
- current status
- gold nanoparticles
- machine learning
- genome wide
- climate change
- energy transfer
- metal organic framework
- electron microscopy
- cystic fibrosis