Toughened self-assembled monolayers for durable perovskite solar cells.
basic_science · Level V
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- Record sourced from PubMed, PMID 40963016.
- Also identified by DOI 10.1038/s41586-025-09509-7.
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Abstract
Hole-selective self-assembled monolayers (SAMs)<sup>1,2</sup> have played a key role in driving the certified power conversion efficiency (PCE) of inverted perovskite solar cells<sup>3-5</sup> to 26.7% (ref. <sup>6</sup>). However, their instability often compromises the operational performance of devices, strongly hindering their practical applications<sup>7,8</sup>. Here we employ a cross-linkable co-SAM to enhance the conformational stability of hole-selective SAMs against external stresses, while suppressing the formation of defects and voids in SAM during self-assembly. The azide-containing SAM can be thermally activated to form a cross-linked and densely assembled co-SAM with a thermally stable conformation and preferred orientation. This effectively minimizes substrate surface exposure caused by wiggling of loose SAMs under thermal stress, preventing perovskite decomposition. This enables a certified PCE of 26.92% to be achieved for the best-performing cell, which also possesses excellent thermal stability with negligible decay under maximum-power-point tracking at 85 °C for 1,000 h. It also retains >98% of initial PCE after 700 repetitive thermal cycles between -40 °C and 85 °C, representing the state of the art of the field. This work offers an in-depth understanding of SAM degradation mechanisms to guide the design of a more robust buried interface for SAM-based devices adopting high-roughness substrates to realize highly efficient and durable perovskite solar cells.