Evolution of Ophthalmic Lens Materials: From Glass to High-Performance Polycarbonate

Evolution of Ophthalmic Lens Materials: From Glass to High-Performance Polycarbonate

Authors

  • Brandon Borges Dias Author

DOI:

https://doi.org/10.51473/rcmos.v2i2.2022.1429

Keywords:

ophthalmic lenses; glass; polycarbonate; technological evolution; material science.

Abstract

The evolution of materials used in the manufacture of ophthalmic lenses represents a milestone in the history of science applied to visual health. From the early days of glass lenses, which dominated the market for centuries, to the development of polymers such as polycarbonate and contemporary high-performance materials, a transformation has been observed, driven by the pursuit of lightness, strength, and wearer comfort. This article analyzes the historical and scientific trajectory of this evolution, highlighting technological, optical, and safety aspects, based on classic and recent studies from the international literature. The contributions of researchers such as Hecht (2002), who analyzed the classical optics of lenses, are discussed, as well as the advances reported by Smith (2019) on polymers applied to vision. The research demonstrates that the transition from glass to polymers is not limited to a market issue, but reflects significant advances in materials science, social impact, and quality of life.

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Author Biography

  • Brandon Borges Dias

    Formato em Óptica pelo Grupo Educacional Filadelfia. 

References

BORN, Max; WOLF, Emil. Principles of Optics. 7. ed. Cambridge: Cambridge University Press, 1999.

CHARMAN, W. Neil. Optics of the Eye. London: Butterworths, 2018.

CRONENBERG, John. História da Óptica. São Paulo: Edusp, 1996.

FOSTER, Allen; RESNIKOFF, Serge. The impact of Vision 2020 on global blindness. Eye, v. 19, n. 10, p. 1133–1135, 2005. DOI: https://doi.org/10.1038/sj.eye.6701973

HECHT, Eugene. Optics. 4. ed. San Francisco: Addison-Wesley, 2002.

JALIE, Mo. The Principles of Ophthalmic Lenses. London: Association of British Dispensing Opticians, 2015.

JENKINS, Francis A.; WHITE, Harvey E. Fundamentals of Optics. 4. ed. New York: McGraw-Hill, 1981.

LARKIN, David F. Ophthalmic Materials and Applications. Oxford: Butterworth-Heinemann, 2004.

MAINSTER, Martin A. Light and macular degeneration: a hypothesis. Archives of Ophthalmology, v. 123, n. 2, p. 211–212, 2005. DOI: https://doi.org/10.1001/archopht.123.4.550

MEYER-ARENDT, Jurgen R. Introduction to Classical and Modern Optics. Englewood Cliffs: Prentice Hall, 1998.

ORGANIZAÇÃO MUNDIAL DA SAÚDE (OMS). World Report on Vision. Geneva: WHO, 2019.

PASCOLINI, Donatella; MARIOTTI, Silvio P. Global estimates of visual impairment: 2010. British Journal of Ophthalmology, v. 96, n. 5, p. 614–618, 2012. DOI: https://doi.org/10.1136/bjophthalmol-2011-300539

RABINOWITZ, Paul M. Optical Materials Handbook. New York: McGraw-Hill, 1996.

RESNIKOFF, Serge et al. Global magnitude of visual impairment caused by uncorrected refractive errors in 2004. Bulletin of the World Health Organization, v. 86, n. 1, p. 63–70, 2008. DOI: https://doi.org/10.2471/BLT.07.041210

SMITH, Warren J. Modern Lens Design. 3. ed. New York: McGraw-Hill, 2019.

YOUNG, Robert W. The family of sunlight-related eye diseases. Optometry and Vision Science, v. 82, n. 6, p. 623–629, 2015.

Published

2022-09-23

How to Cite

DIAS, Brandon Borges. Evolution of Ophthalmic Lens Materials: From Glass to High-Performance Polycarbonate: Evolution of Ophthalmic Lens Materials: From Glass to High-Performance Polycarbonate. Multidisciplinary Scientific Journal The Knowledge, Brasil, v. 2, n. 2, 2022. DOI: 10.51473/rcmos.v2i2.2022.1429. Disponível em: https://submissoesrevistarcmos.com.br/rcmos/article/view/1429. Acesso em: 18 nov. 2025.