Quinoxaline derivatives modification of nickel oxide interfaces for scalable perovskite solar cells

Interfacial recombination at the NiO x /perovskite interface remains a key limitation to the efficiency and scalability of perovskite solar cells (PSCs), especially under ambient-air fabrication conditions. In this study, we introduce quinoxaline-based bifunctional organic molecules containing a dicarboxylic acid functional group (Qu-COOH) or a dicyano functional group (Qu-CN) as an interfacial modifier to passivate surface defects and tune the energy alignment between NiO x and perovskite. Compared to Qu-CN, Qu-COOH-modified NiO x exhibited improved Ni 3+ /Ni 2+ ratios and deeper work function, which established a favorable interfacial dipole to facilitate hole extraction and reducing interfacial recombination. Spectroscopic and electrical analyses, reveal that the Qu-COOH layer effectively passivates buried interface defects, not only accelerating charge extraction dynamics but also minimizing trap-assisted and non-radiative recombination. As a result, devices based on Qu-COOH-modified NiO x achieved a power conversion efficiency (PCE) of 18.22 %, significantly higher than the 13.44 % of unmodified controls. The Qu-COOH modification also exhibited scalable manufacturability, which, upon incorporation into an ambient-compatible sequential slot-die coating process, yielded large-area 5 × 5 cm 2 perovskite solar modules (PSMs) with a PCE of 14.49 % and excellent spatial uniformity. In terms of device stability, unencapsulated Qu-COOH-modified devices retained over 80 % of their initial efficiency (T 80 ) after 800 h of storage in dry air, an over 400 % improvement over the control. This work highlights the dual role of Qu-COOH as both an electronic passivator and a morphological regulator, offering a viable route toward scalable, ambient-stable PSCs.

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Publication Details

Journal
Solar Energy
Published
2026-10-07
DOI
https://doi.org/10.1016/j.solener.2026.115206
Primary Topic
Perovskite Materials and Applications
Type
article
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Quinoxaline derivatives modification of nickel oxide interfaces for scalable perovskite solar cells

You-Ren Chen, Yuan Jay Chang, Yu Hsuan Lin, Yu‐Ching Huang et al.
Solar Energy
Perovskite Materials and Applications
article

Quinoxaline derivatives modification of nickel oxide interfaces for scalable perovskite solar cells

You-Ren Chen, Yuan Jay Chang, Yu Hsuan Lin, Yu‐Ching Huang, Feng‐Yu Tsai, Ssu-Yung Chung, Chia-Fang Li, Hou-Chin Cha, Shih-Han Huang, Yu-Tong Hung
article en

Abstract

Interfacial recombination at the NiO x /perovskite interface remains a key limitation to the efficiency and scalability of perovskite solar cells (PSCs), especially under ambient-air fabrication conditions. In this study, we introduce quinoxaline-based bifunctional organic molecules containing a dicarboxylic acid functional group (Qu-COOH) or a dicyano functional group (Qu-CN) as an interfacial modifier to passivate surface defects and tune the energy alignment between NiO x and perovskite. Compared to Qu-CN, Qu-COOH-modified NiO x exhibited improved Ni 3+ /Ni 2+ ratios and deeper work function, which established a favorable interfacial dipole to facilitate hole extraction and reducing interfacial recombination. Spectroscopic and electrical analyses, reveal that the Qu-COOH layer effectively passivates buried interface defects, not only accelerating charge extraction dynamics but also minimizing trap-assisted and non-radiative recombination. As a result, devices based on Qu-COOH-modified NiO x achieved a power conversion efficiency (PCE) of 18.22 %, significantly higher than the 13.44 % of unmodified controls. The Qu-COOH modification also exhibited scalable manufacturability, which, upon incorporation into an ambient-compatible sequential slot-die coating process, yielded large-area 5 × 5 cm 2 perovskite solar modules (PSMs) with a PCE of 14.49 % and excellent spatial uniformity. In terms of device stability, unencapsulated Qu-COOH-modified devices retained over 80 % of their initial efficiency (T 80 ) after 800 h of storage in dry air, an over 400 % improvement over the control. This work highlights the dual role of Qu-COOH as both an electronic passivator and a morphological regulator, offering a viable route toward scalable, ambient-stable PSCs.

Solar EnergyVol. 319
Ming Chi University of Technology (TW), National Taiwan University (TW), Tunghai University (TW), Chang Gung University (TW), Academia Sinica (TW)
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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