Snelgrove, Matthew ORCID: 0000-0003-0344-1146 (2022) Characterising infiltration techniques in polymer area selective deposition. PhD thesis, Dublin City University.
Abstract
The integrated circuit (IC) and the vast number of transistors that each one contains has
revolutionised how humanity lives in the 21st century. Key to the near constant progress
in modern electronics is the photolithography process of ‘top down’ patterning an IC with
the use of light, interconnecting the millions of transistors together so that the device can
perform a rich variety of roles. However, the increasing demand for faster, more efficient
technology while ensuring costs are kept to a minimum, has caused photolithography to
fast approach its technological and financial limitations. Research into ‘bottom-up’
methods as an alternative to photolithography for next-generation electronic devices has
led to major efforts in identifying suitable polymers for area selective deposition (ASD)
and block copolymer (BCP) lithography. These patterning approaches rely on a selfassembled surface containing ‘active’ or ‘inactive’ polymer regions. When the sample is
exposed to a metal in solvent or chemical-precursor form, the solvent/precursor will
either be incorporated or rejected by the active or inactive polymers, respectively.
Subsequent polymer removal can be achieved through an oxygen rich process, leaving a
metal oxide patterned in such a way that imitates the original morphology of the polymer
structure to which the metal was exposed. This work focuses on developing and
characterising metal infiltration techniques into various polymers that have shown the
capability to be used in ASD and BCP sectors. Both liquid and vapor infiltration processes
are investigated using X-ray photoelectron spectroscopy as the core analysis method,
alongside techniques such as atomic force microscopy, transmission electron microscopy,
ellipsometry and thin film electrical measurements.
Metadata
Item Type: | Thesis (PhD) |
---|---|
Date of Award: | February 2022 |
Refereed: | No |
Supervisor(s): | O'Connor, Robert and McGlynn, Enda |
Subjects: | Physical Sciences > Organic chemistry Physical Sciences > Physics Physical Sciences > Thin films Physical Sciences > Plasma processing |
DCU Faculties and Centres: | DCU Faculties and Schools > Faculty of Science and Health > School of Physical Sciences |
Use License: | This item is licensed under a Creative Commons Attribution-NonCommercial-No Derivative Works 4.0 License. View License |
Funders: | Science Foundation Ireland |
ID Code: | 26595 |
Deposited On: | 18 Feb 2022 11:33 by Robert O'connor . Last Modified 07 Nov 2023 12:39 |
Documents
Full text available as:
Preview |
PDF
- Requires a PDF viewer such as GSview, Xpdf or Adobe Acrobat Reader
Creative Commons: Attribution-Noncommercial-No Derivative Works 4.0 13MB |
Downloads
Downloads
Downloads per month over past year
Archive Staff Only: edit this record