Hostname: page-component-78c5997874-4rdpn Total loading time: 0 Render date: 2024-11-16T17:01:30.403Z Has data issue: false hasContentIssue false

Composite polymer core – ceria shell abrasive particles during silicon oxide CMP

Published online by Cambridge University Press:  01 February 2011

Silvia Armini
Affiliation:
[email protected], IMEC/KU LEUVEN, AMPS-CMP/ESAT, Kapeldreef 75, Leuven, 3001, Belgium
Joke De Messemaeker
Affiliation:
Joke.DeMessemaeker @imec.be, Umicore, R&D, Kasteelstraat 7, Olen, B-2250, Belgium
Ruslan Burtovyy
Affiliation:
[email protected], Clemson University, School of Materials Science and Engineering, Clemson, SC, 29634, United States
Igor Luzinov
Affiliation:
[email protected], Clemson University, School of Materials Science and Engineering, Clemson, SC, 29634, United States
Caroline M. Whelan
Affiliation:
[email protected], Imec, Leuven, 3001, Belgium
Mansour Moinpour
Affiliation:
[email protected], Intel Corporation, Santa Clara, CA, 95052, United States
Karen Maex
Affiliation:
[email protected], Katholieke Universiteit Leuven, Leuven, B-3001, Belgium
Get access

Abstract

Although dielectric polishing is primarily mechanical in nature, surface chemical effects can be tailored to enhance material removal, selectivity and planarity. The use of ceria abrasives in oxide polishing is particularly attractive because of favorable polishing characteristics that are generally not obtainable using conventional fumed or colloidal silica abrasives. Unfortunately, a characteristic of ceria abrasive is an enhanced tendency toward defectivity in comparison with conventional silica. Entirely novel composite structures comprising 300 nm polymer particles coated by ceria (specific surface area of the powder 61 m2/g), are achieved by either adding silane coupling agents (Composite A) or tuning the pH in order to form electrostatic attractive interactions between the core and the shell (Composite B). The polymer core shows mechanical properties that are highly tunable by variation of its synthesis parameters, while the major advantage of the ceria coating is an enhanced chemical action of the abrasive particles, commonly referred to as the chemical tooth model. In this study we report the evolution of RR, haze, and defects such as particles and scratches in CMP experiments on high-density plasma (HDP) silicon oxide using four abrasive types (14 nm primary size ceria particles, 300 nm polymer particles, composites A and B) at pH 3 and 10. Interestingly, the two types of composite exhibit different RR. This is attributed to differences in morphology and surface composition. Composite B presents more similarities with the ceria, as confirmed by particle / silica surface adhesion forces in different pH solutions, measured by a colloidal AFM technique.

Keywords

Type
Research Article
Copyright
Copyright © Materials Research Society 2007

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

1. Evans, D. R.; Mat. Res. Soc. Symp. Proc., Vol. 816 (2004).Google Scholar
2. Zhuang, Y.; King, D.; Kido, T.; Philipossian, A., Jpn. J. Appl. Phys., 44, 1A, 30 (2005).Google Scholar
3. Kang, H.; Katoh, T.; Kim, S.; Paik, U.; Park, H., Jpn. J. Appl. Phys., 43, L365 (2004).Google Scholar
4. Kang, H.; Katoh, T.; Lee, M.; Park, J.; Paik, U., Jpn. J. Appl. Phys., 43, L1060 (2004).Google Scholar
5. Katoh, T.; Kim, S.; Paik, U.; Park, J., Jpn. J. Appl. Phys., 42, 5430 (2003).Google Scholar
6. Kim, S.; Paik, U.; Oh, S.; Park, Y.; Katho, T.; Park, J., Jpn. J. Appl. Phys., 42, 1227 (2003).Google Scholar
7. Lee, J. W.; Yoon, B. U.; Hah, S.; Moon, J. T., Mat. Res. Soc. Symp. Proc., Vol. 671 (2001).Google Scholar
8. Cook, L. M., J. Non-Cryst. Solids, 120, 152 (1990).Google Scholar
9. Hoshino, T.; Kurata, Y.; Terasaki, Y.; Susa, K., J. Non-Cryst. Solids, 283, 129 (2001).Google Scholar
10. Gupta, V.; Jena, A. K., Filtration News, 17, 40 (1999).Google Scholar
11. Armini, S.; Whelan, C.M.; Smet, M.; Eslava, S.; Maex, K., Polymer J., 38, 8, 786 (2006).Google Scholar
12. Armini, S.; Vakarelski, I. U.; Whelan, C.M.; Maex, K.; Higashitani, K., Langmuir, 23, 2007, (2007).Google Scholar
13. Armini, S.; Moinpour, M.; Whelan, C.M.; Hernandez, J. L.; Maex, K. J. Electrochem. Soc., in publication.Google Scholar