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Optimized design of block copolymers with covarying properties for nanolithography.

Hongbo FengMoshe DolejsiNing ZhuSoonmin YimWhitney S LooPeiyuan MaChun ZhouGordon S W CraigWen ChenLei WanRicardo RuizJuan J de PabloStuart J RowanPaul F Nealey
Published in: Nature materials (2022)
The ability to impart multiple covarying properties into a single material represents a grand challenge in manufacturing. In the design of block copolymers (BCPs) for directed self-assembly and nanolithography, materials often balance orthogonal properties to meet constraints related to processing, structure and defectivity. Although iterative synthesis strategies deliver BCPs with attractive properties, identifying materials with all the required attributes has been difficult. Here we report a high-throughput synthesis and characterization platform for the discovery and optimization of BCPs with A-block-(B-random-C) architectures for lithographic patterning in semiconductor manufacturing. Starting from a parent BCP and using thiol-epoxy 'click' chemistry, we synthesize a library of BCPs that cover a large and complex parameter space. This allows us to readily identify feature-size-dependent BCP chemistries for 8-20-nm-pitch patterns. These blocks have similar surface energies for directed self-assembly, and control over the segregation strength to optimize the structure (favoured at higher segregation strengths) and defectivity (favoured at lower segregation strengths).
Keyphrases
  • high throughput
  • small molecule
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  • image quality
  • magnetic resonance