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NiO<sub><i>x</i></sub>‐Seeded Self‐Assembled Monolayers as Highly Hole‐Selective Passivating Contacts for Efficient Inverted Perovskite Solar Cells
131
Citations
38
References
2021
Year
EngineeringHalide PerovskitesOptoelectronic DevicesPerovskite ModulePromoted AdsorptionPhotovoltaicsSensitive Adsorption ProcessSolar Cell StructuresIndium Tin OxideMaterials ScienceOxide HeterostructuresNanotechnologyOxide ElectronicsPerovskite MaterialsLead-free PerovskitesPerovskite Solar CellSelf‐assembled MonolayersSurface ScienceApplied PhysicsThin FilmsSolar CellsSolar Cell Materials
Self‐assembled monolayers (SAMs) have emerged as effective carrier transport layers in perovskite (PVK) solar cells because of their unique ability to manipulate interfacial property, as well as simple processing and scalable fabrication. However, the defects and pinholes derived from their sensitive adsorption process inevitably deteriorate the final device performance. Herein, a sputtered nickel oxide (NiO x ) interlayer is used as a seed layer to promote the adsorption of the [2‐(3,6‐dimethoxy‐9H‐carbazol‐9‐yl)ethyl]phosphonic acid (MeO‐2PACz) SAM on the indium tin oxide (ITO) substrate. The promoted adsorption is attributed to the enhanced tridentate binding between MeO‐2PACz and NiO x relative to the conventional bidentate binding between MeO‐2PACz and ITO. In addition, the NiO x modification can simultaneously improve the passivation ability and hole‐selectivity of the MeO‐2PACz, provide a favorable energy‐level alignment at the ITO/PVK interface, and prevent a direct contact between PVK and ITO. As a consequence, this NiO x ‐seeded MeO‐2PACz hole transport layer enables a significantly enhanced power conversion efficiency of 19.9% in comparison with 18.4% of the control device. This work provides an effective strategy to improve the performance of the SAM‐based photoelectric device.
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