AI Article Synopsis

  • Mask-free direct printing offers a cost-effective alternative to traditional photo-lithography in chip processing, facing challenges like nozzle clogging and mechanical strain due to short focal length nozzles.
  • This study introduces a novel AAFCVD printing system that merges long focal length aerosol printing with aerosol-assisted chemical vapor deposition, resulting in improved single-point printing capabilities.
  • Key findings include the discovery of a unique carbon injection effect and an evaluation of the system's performance for linear graphics printing, positioning it as a promising solution for future chip manufacturing.

Article Abstract

Mask-free direct printing can alleviate the high cost and high consumption involved in photo-lithography for chip processing. Most of their technical routes are based on the traditional short focal length nozzles, which is suffered from higher probability of nozzle retardation or clogging as well as the higher mechanical burdens. While aerosol-assisted chemical vapor deposition (AACVD) has better deposition adaptability but usually lack of focused printing. In this study, a system that combines of long focal length ALS with AACVD, so called AAFCVD printing system has been developed. The single-point printing capability and aerosol precursor adaptability were verified, and the relationship between the single spot printing performance and the chemical reaction mechanisms were studied. Furthermore, a unique carbon injection effect brought by ALS was discovered. Finally, the linear graphics printing performances of the system were evaluated. This system is expected to become a new generation of high-performance mask-free printing system for chip manufacturing.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8694530PMC
http://dx.doi.org/10.1039/d0ra08447fDOI Listing

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