Nickel Chlorophyll-Derived Hole Transport Materials for Stable and Efficient Inverted Perovskite Solar Cells.
basic_science · Level V
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- Record sourced from PubMed, PMID 40185689.
- Also identified by DOI 10.1021/acs.nanolett.5c00645.
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Abstract
Hole-selective layers (HSLs) are critical for efficient and stable perovskite solar cells (PSCs). Chlorophylls (Chls) and their analogs exhibit unique optoelectronic properties, making them attractive for photovoltaics. However, dopant-free Chl-based materials remain underexplored, with reported power conversion efficiencies (PCEs) below 19%. This study investigates three nickel chlorins (<b>NiChl</b>s) as monomers for functional materials. Nickel methyl pyropheophorbide-<i>a</i> (<b>NiChl-Oxo</b>), derived from natural Chl-<i>a</i>, was chemically modified at the C13-keto-carbonyl group, yielding <b>NiChl-Deoxo</b> and <b>NiChl-CN</b>. Electrochemical polymerization was used to fabricate the corresponding polymerized <b>NiChl</b> films as HSLs. Without dopants, <b>NiChl-Deoxo</b>-based PSCs achieved a record PCE of 21.8%, with a fill factor of 83.8%, which is the highest reported efficiency for Chl-based PSCs to date. Additionally, these devices exhibited exceptional long-term stability. This study highlights the effectiveness of strategic molecular modifications in advancing Chl-based materials and presents a promising pathway for developing high-performance, dopant-free HSLs for next-generation PSCs.