Sep 2026· Advances in Materials· pp.
e74912
· 0 citations· 35 references
Medicine
Abstract
Inverted perovskite solar cells (PSCs) possess great potential for improving efficiency and operating stability, but parasitic charge recombination at the interfaces still limits their performance. As additives and surface treatment agents, ammonium ligands have been reported to form either two/three-dimensional (2D/3D) heterojunctions or passivation layers. In this work, we first conduct a comprehensive, large language model (LLM)-enabled literature mining to systematically enumerate ligand molecules reported over the past decade, through which we identify a pronounced knowledge gap concerning thiazole-based ligands. Then, in a comparative case study, perovskite films are treated with two thiazole- and thiophen-based ligands, which are small rigid aromatic heterocycles with similar molecular conformation. Thiophen-2-ylmethanamine hydrochloride (TPMA) induces 2D phase formation within 3D perovskite films. In comparison, 1,3-thiazol-2-ylmethanamine hydrochloride (TMA), with enhanced charge-transfer interactions associated with the S ions on the aromatic rings, demonstrates a stronger defect passivation capability. Overall, the TMA-based counterpart exhibits lower defect density, extended carrier lifetime, and a more favorable band offset. With the thiazole-based ligand, the resulting inverted PSC achieves an efficiency of 26.81% (certified 26.43%) and retains 96.4% of its initial performance after 1000 h tracking under continuous illumination at the maximum power point.
Organic-inorganic hybrid perovskites (OIHPs) have emerged as attractive photoactive materials for next-generation photodetectors (PDs) due to their facile solution processability and excellent optoelectronic properties. However, the practical applications of perovskite-based PDs are severely hindered by their intrinsic...
Ya-Dong Wang, Xiao-Yi Hu, Ping-Yuan Song et al.· Small· 0 citations
Perovskite solar cells (PSCs) have reached power conversion efficiencies (PCEs) over 27%, yet further improvements in stability remain critical. Surface passivation is an effective strategy to reduce defects and enhance device durability. Inorganic passivation, in particular, offers stronger chemical bonding and de...
Jia-Hui Shen, Ke Zhao, Dong-Er Jin et al.· Chinese journal of chemistry· 0 citations
Defect-induced non-radiative recombination and insufficient long-term stability hinder the commercial viability of organic-inorganic lead halide perovskites. Here we compare ethylammonium iodide (EAI) with its fluorinated analog 2,2,2-trifluoroethylammonium iodide (TFEAI) as additives in methylammonium lead triiodide (...
In recent years, organic–inorganic halide perovskite solar cells (PSCs) have rapidly emerged as one of the most promising third‐generation photovoltaic technologies, due to their high‐power conversion efficiency (PCE), low cost, and solution processability. The device performance and PCE depend on the architecture of P...
G. R., Samrudhi B. M., Rachel Chetri et al.· Solar RRL· 0 citations
Triple-junction tandem solar cells require top-cell absorbers with suitable wide-bandgap (2.0-2.3 eV), low toxicity, and high stability. Bismuth-based perovskites with the A3B2X9 structure have emerged as promising candidates due to their nontoxic nature and favorable optoelectronic properties. However, their efficienc...
Ziyu Cai, Tao Dong, Li-Chen Mao et al.· Inorganic Chemistry· 0 citations
Phenethylammonium iodide (PEAI) is widely used to passivate undercoordinated ionic defects and regulate the near-surface structure of inverted perovskite solar cells; however, the solvent used for PEAI deposition can also interact with the underlying perovskite and therefore determine the treatment outcome. Here, ethan...
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