4.8 Article

Dual Interfacial Design for Efficient CsPbI2Br Perovskite Solar Cells with Improved Photostability

Journal

ADVANCED MATERIALS
Volume 31, Issue 23, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.201901152

Keywords

all-inorganic perovskite solar cells; high efficiency; interface modification; photoinduced halide segregation; surface passivation

Funding

  1. Natural Science Foundation of China [51803060, 21761132001, 51573057]
  2. Ministry of Science and Technology [2017YF0206600]
  3. Science and Technology Program of Guangdong Province, China [2018A030313045]
  4. Science and Technology Program of Guangzhou, China [201607020010, 2017A050503002]
  5. DFG [BR 4031/13-1, SFB 953]
  6. Bavarian Ministry of Economic Affairs and Media, Energy and Technology - HI-ERN of FZ Julich [IEK11]
  7. Aufbruch Bayern initiative of the state of Bavaria (EnCN)
  8. Bavarian Initiative Solar Technologies go Hybrid (SolTech)
  9. Aufbruch Bayern initiative of the state of Bavaria (SFF)

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A synergic interface design is demonstrated for photostable inorganic mixed-halide perovskite solar cells (PVSCs) by applying an amino-functionalized polymer (PN4N) as cathode interlayer and a dopant-free hole-transporting polymer poly[5,5 '-bis(2-butyloctyl)-(2,2 '-bithiophene)-4,4 '-dicarboxylate-alt-5,5 '-2,2 '-bithiophene] (PDCBT) as anode interlayer. First, the interfacial dipole formed at the cathode interface reduces the workfunction of SnO2, while PDCBT with deeper-lying highest occupied molecular orbital (HOMO) level provides a better energy-level matching at the anode, leading to a significant enhancement in open-circuit voltage (V-oc) of the PVSCs. Second, the PN4N layer can also tune the surface wetting property to promote the growth of high-quality all-inorganic perovskite films with larger grain size and higher crystallinity. Most importantly, both theoretical and experimental results reveal that PN4N and PDCBT can interact strongly with the perovskite crystal, which effectively passivates the electronic surface trap states and suppresses the photoinduced halide segregation of CsPbI2Br films. Therefore, the optimized CsPbI2Br PVSCs exhibit reduced interfacial recombination with efficiency over 16%, which is one of the highest efficiencies reported for all-inorganic PVSCs. A high photostability with a less than 10% efficiency drop is demonstrated for the CsPbI2Br PVSCs with dual interfacial modifications under continuous 1 sun equivalent illumination for 400 h.

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