Identifying the charge generation dynamics in Cs+-based triple cation mixed perovskite solar cells.
Manuel SaladoRamesh K KokalLaura CalioSamrana KazimMelepurath DeepaShahzada AhmadPublished in: Physical chemistry chemical physics : PCCP (2018)
Triple cation based perovskite solar cells offer enhanced moisture tolerance and stability compared to mixed perovskites. Slight substitution of methyl ammonium or formamidinium cation by cesium (Cs+), was also reported to eliminate halide segregation due to its smaller size. To elucidate the device kinetics and understand the role of the Cs, we undertook different modes of scanning probe microscopy and electrochemical impedance spectroscopy (EIS) experiments. Kelvin probe force microscopy revealed that the incorporation of the Cs cation increases the contact potential difference (CPD), this CPD further increases when Spiro-OMeTAD is used as a hole transport material. The current at the nanoscale level shows improvement with Cs inclusion and further enhancement by the Spiro-OMeTAD deposition, studied under light illumination, which supports the high photocurrent density obtained from the cells. EIS demonstrates that in a triple cation environment, reduced carrier recombination at the TiO2/perovskite interface was also obtained which in turn allow us to achieve a higher Voc value.
Keyphrases
- perovskite solar cells
- ionic liquid
- single molecule
- high resolution
- living cells
- solar cells
- room temperature
- quantum dots
- induced apoptosis
- high speed
- high throughput
- atomic force microscopy
- label free
- dna repair
- fluorescent probe
- magnetic resonance imaging
- gold nanoparticles
- single cell
- mass spectrometry
- computed tomography
- risk assessment
- sensitive detection
- solid state
- visible light
- electron transfer
- cell proliferation