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Efficient and Stable Perovskite Solar Cells by B-Site Compositional Engineered All-Inorganic Perovskites and Interface Passivation.

Lening ShenYongrui YangTao ZhuLei LiuJie ZhengXiong Gong
Published in: ACS applied materials & interfaces (2022)
Perovskite solar cells (PSCs) have emerged as a cost-effective solar technology in the past years. PSCs by three-dimensional hybrid inorganic-organic perovskites exhibited decent power conversion efficiencies (PCEs); however, their stabilities were poor. On the other hand, PSCs by all-inorganic perovskites indeed exhibited good stability, but their PCEs were low. Here, the development of novel all-inorganic perovskites CsPbI 2 Br: x Nd 3+ , where Pb 2+ at the B-site is partially heterovalently substituted by Nd 3+ , is reported. The CsPbI 2 Br: x Nd 3+ thin films possess enlarged crystal sizes, enhanced charge carrier mobilities, and superior crystallinity. Thus, the PSCs by the CsPbI 2 Br: x Nd 3+ thin films exhibit more than 20% enhanced PCEs and dramatically boosted stability compared to those based on pristine CsPbI 2 Br thin films. To further boost the device performance of PSCs, solution-processed 4-lithium styrenesulfonic acid/styrene copolymer (LiSPS) is utilized to passivate the surface defect and suppress surface charge carrier recombination. The PSCs based on the CsPbI 2 Br: x Nd 3+ /LiSPS bilayer thin film possess reduced charge extraction lifetime and suppressed charge carrier recombination, resulting in 14% enhanced PCEs and significantly boosted stability compared to those without incorporation of the LiSPS interface passivation layer. All these results indicate that we developed a facile way to approach high-performance PSCs by all-inorganic perovskites.
Keyphrases
  • perovskite solar cells
  • solar cells
  • dna damage
  • dna repair
  • heavy metals
  • water soluble
  • solid state
  • highly efficient
  • molecular dynamics simulations
  • walled carbon nanotubes
  • metal organic framework