Robust Ionic Anchoring at NiOx Interfaces Enables Efficient Outdoor and Indoor Inverted Perovskite Solar Cells.

The interfacial chemistry between hole-selective contacts (HSCs) and oxide substrates plays a critical role in governing charge extraction, interfacial recombination, and operational stability in inverted perovskite solar cells (PSCs). We designed three carbazole-based HSCs that share a D-π-A backbone but differ systematically in anchoring group chemistry and molecular ionicity: a neutral pyridine (HSC-N), a zwitterionic N-oxide (HSC-O), and an ionic pyridinium salt with a pendant carboxyethyl group and Br- counterion (HSC-A), respectively. This molecular design isolates the anchoring-group effect and correlates it with interfacial energetics, dipole modulation, and device performance. Increasing molecular ionicity greatly enhances the dipole moment from 3.98 D for HSC-N to 17.11 D for HSC-A, effectively tuning the NiOx surface energetics and promoting directional charge transport. After DMF/DMSO rinsing, HSC-A retained 72% of its initial surface loading, sufficient to deepen the valence band maximum at the NiOx interface and most effectively suppress non-radiative recombination. Together, these effects yield champion PCEs of 21.42% and 19.52% for 1.57 eV and 1.68 eV perovskite absorbers, respectively. Under 1000-lux indoor illumination, HSC-A-based devices achieve an average PCE of 40.47% and retain nearly their initial efficiency after 34 days in ambient air. These results directly link anchoring-group design to device performance, highlighting ionic pyridinium-carboxylate contacts as an effective strategy for high-performance inverted PSCs.

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Journal
PubMed
Published
2026-09-09
DOI
https://doi.org/10.1021/acsami.6c11066
Primary Topic
Perovskite Materials and Applications
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article
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article

Robust Ionic Anchoring at NiOx Interfaces Enables Efficient Outdoor and Indoor Inverted Perovskite Solar Cells.

Je‐Wei Chang, Ireneusz Kownacki, Zhong‐En Shi, Yung‐Sheng Yen et al.
PubMed
Perovskite Materials and Applications
article

Robust Ionic Anchoring at NiOx Interfaces Enables Efficient Outdoor and Indoor Inverted Perovskite Solar Cells.

Je‐Wei Chang, Ireneusz Kownacki, Zhong‐En Shi, Yung‐Sheng Yen, Yen‐Ming Chen, Chia Hsien Chen, Yi-Han Zheng, Kun Mu Lee, Chun-Jen Su, Zheng-Xuan Cai, Yan-Ru Lin, Chih-Ping Chen
article en

Abstract

The interfacial chemistry between hole-selective contacts (HSCs) and oxide substrates plays a critical role in governing charge extraction, interfacial recombination, and operational stability in inverted perovskite solar cells (PSCs). We designed three carbazole-based HSCs that share a D-π-A backbone but differ systematically in anchoring group chemistry and molecular ionicity: a neutral pyridine (HSC-N), a zwitterionic N-oxide (HSC-O), and an ionic pyridinium salt with a pendant carboxyethyl group and Br- counterion (HSC-A), respectively. This molecular design isolates the anchoring-group effect and correlates it with interfacial energetics, dipole modulation, and device performance. Increasing molecular ionicity greatly enhances the dipole moment from 3.98 D for HSC-N to 17.11 D for HSC-A, effectively tuning the NiOx surface energetics and promoting directional charge transport. After DMF/DMSO rinsing, HSC-A retained 72% of its initial surface loading, sufficient to deepen the valence band maximum at the NiOx interface and most effectively suppress non-radiative recombination. Together, these effects yield champion PCEs of 21.42% and 19.52% for 1.57 eV and 1.68 eV perovskite absorbers, respectively. Under 1000-lux indoor illumination, HSC-A-based devices achieve an average PCE of 40.47% and retain nearly their initial efficiency after 34 days in ambient air. These results directly link anchoring-group design to device performance, highlighting ionic pyridinium-carboxylate contacts as an effective strategy for high-performance inverted PSCs.

PubMedVol. 18(35)
Ming Chi University of Technology (TW), National United University (TW), Chang Gung University of Science and Technology (TW), Chung Yuan Christian University (TW), Chang Gung University (TW), National Synchrotron Radiation Research Center (TW), Adam Mickiewicz University in Poznań (PL)
Affordable and clean energy
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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