Effect of Ethylmethacrylate and Isobutylmethacrylate on Surface Hardness and Surface Roughness of Heat-Cure Ocular Acrylic Resins

Authors

  • Hiba Munaf Hadi Department of Prosthetic Dental Technologies, College of Health and Medical Technologies, Middle Technical University, Baghdad, Iraq
  • Ayad I. Haddad Department of Prosthetic Dental Technologies, College of Health and Medical Technologies, Middle Technical University, Baghdad, Iraq
  • Firas Abd kati Department of Prosthetic Dental Technologies, College of Health and Medical Technologies, Middle Technical University, Baghdad, Iraq

DOI:

https://doi.org/10.51173/jt.v3i4.394

Keywords:

Copolymers, Acrylic Resins, Surface Hardness, Surface Roughness, Artificial Eye

Abstract

Background Acrylic resin is a commonly utilized material in clinical practice, including:  maxillofacial prosthesis Interim prostheses, repair dentures, reline, orthodontic equipment, and record bases are only a few examples of possible applications. However, these materials have some drawbacks, for example low mechanical properties. To improve the performance of the acrylic resins, various materials have been incorporated.

Purpose: The purpose of this research is to assess the effects of adding different concentrations of copolymers of Ethyl methacrylate (EA) and Isobutyl methacrylate (IBMA) monomers on some of the mechanical properties of acrylic resin such as surface hardness and surface roughness.

Approach: 100 samples were made of acrylic resin and were divided into three groups (a control group and two experimental groups). Twenty samples were used for the control group and these samples were divided into ten samples for each group based on the tests performed. While 40 samples per experimental group (IBMA, EMA) were divided into two groups according to the added concentration (1% and 2%). Then, according to the tests performed, each group was divided into two groups with ten samples for each group. Acrylic samples were fabricated with dimensions of 65 mm x 10 mm x 2.5 lengths, width and thickness respectively according to (ADA specification, No.12, 1999). Each specimen was subjected to the surface hardness test and surface roughness test. All data were analyzed using SPSS version 20, One –way ANOVA, LSD and Post Hoc -Tukey test were utilized for detecting the significant differences and multiple comparisons.

Results:  The control group had the greatest mean value of hardness compared with the experimental group while the EMA 1% group showed the lowest mean value of roughness test compared with the control and other experimental groups.

Conclusion: The incorporation of experimental groups (IBMA, EMA) in different concentrations by weight in MMA and PMMA had a decrease slightly of surface hardness of acrylic resins, and the incorporation of EMA 1% by weight in MMA and PMMA had improved surface roughness. In added EMA2%, IBMA 2% enhanced slightly the surface roughness of acrylic resins.

Downloads

Download data is not yet available.

References

M. C. Goiato et al., "Psychosocial impact on anophthalmic patients wearing ocular prosthesis," International journal of oral and maxillofacial surgery, vol. 42, no. 1, pp. 113-119, 2013.

F. P. de Caxias, D. M. Dos Santos, L. C. Bannwart, C. L. de Moraes Melo Neto, and M. C. Goiato, "Classification, history, and future prospects of maxillofacial prosthesis," International journal of dentistry, vol. 2019, 2019.

G. C. Da Costa, M. A. Aras, P. Chalakkal, and M. C. Da Costa, "Ocular prosthesis incorporating IPS e-max press scleral veneer and a literature review on non-integrated ocular prosthesis," International journal of ophthalmology, vol. 10, no. 1, p. 148, 2017.

A. Sajjad, "Ocular prosthesis-a simulation of human anatomy: a literature review," Cureus, vol. 4, no. 12, p. e74, 2012.

A. V. John, S. Anilkumar, C. Rajesh, and S. M. Raghavan, "A novel technique of custom ocular prosthesis fabrication," Journal of Oral Research and Review, vol. 8, no. 2, p. 82, 2016.

S. Khalaf, N. A. T. Jazzaa, and M. R. A. Jabbar, "Custom-made ocular prosthesis manufactured with permanent soft denture lining material: An alternative method," Journal of International Oral Health, vol. 12, no. 1, p. 91, 2020.

R. L. Cruz, M. T. Ross, S. K. Powell, and M. A. Woodruff, "Advancements in Soft-Tissue Prosthetics Part B: The Chemistry of Imitating Life," Frontiers in bioengineering and biotechnology, vol. 8, p. 147, 2020.

F. Abd Kati, "Effect of the incorporation of zinc oxide nanoparticles on the flexural strength of auto-polymerized acrylic resins," Journal of Oral Research, vol. 8, no. 1, pp. 37-41, 2019.

S. Allahyari and S. Niakan, "Processing techniques of acrylic resin in removable and maxillofacial prosthesis: A review," Journal of Craniomaxillofacial Research, pp. 99-104, 2018.

F. Tugut, M. Turgut, and D. J. A. C. I. Saraydin, "Influence of concentrations of methacrylate and acrylate monomers on the properties of fiber reinforced polymethyl methacrylate denture base materials," vol. 26, no. 2, pp. 329-350, 2018.

L. Machado-Santos, N. Silikas, K. Baroudi, M.-A.-C. Sinhoreti, W.-C. Brandt, and P.-C.-S. Liporoni, "Mechanical performance of experimental acrylic resins modified by nanoparticles after chemical and mechanical degradation," Journal of Clinical and Experimental Dentistry, vol. 12, no. 12, p. e1157, 2020.

B. Ali Sabri, M. Satgunam, N. Abreeza, and A. N. Abed, "A review on enhancements of PMMA Denture Base Material with Different Nano-Fillers," Cogent Engineering, vol. 8, no. 1, p. 1875968, 2021.

B. Shrestha and S. Thaworanunta, "Orbital prosthesis fabrication: current challenges and future aspects," Open Access Surgery, vol. 9, pp. 21-28, 2016.

R. Lanzara, A. Thakur, M. Viswambaran, and A. Khattak, "Fabrication of ocular prosthesis with a digital customization technique–A case report," Journal of family medicine and primary care, vol. 8, no. 3, p. 1239, 2019.

N. Bali, R. S. Dhall, and N. Singh, "Various steps involved in fabrication of an ocular prosthesis: A case report," Int J Dent Med Res, vol. 1, no. 5, pp. 93-96, 2015.

P. Manandhar and S. R. Mathema, "A Simplified Approach for Ocular Rehabilitation-A Case Report," Journal of Nepalese Prosthodontic Society, vol. 3, no. 2, pp. 120-124, 2020.

D. Choubisa, "A simplified approach to rehabilitate an ocular defect: Ocular prosthesis," The Journal of the Indian Prosthodontic Society, vol. 17, no. 1, p. 89, 2017.

T. Sethi, M. Kheur, C. Haylock, and H. Harianawala, "Fabrication of a custom ocular prosthesis," Middle East African journal of ophthalmology, vol. 21, no. 3, p. 271, 2014.

F. Abd Kati and A. F. J. Al-Kaabi, "Effect of oil paint addition on micro hardness of acrylic ocular prosthesis," Iraqi Dental Journal, vol. 38, no. 2, pp. 87-89, 2016.

M. M. Turki and F. M. Abdul-Ameer, "Influence of Silver Nanoparticles on the Specific Properties of Acrylic Resin for Ocular Prosthesis," Biomedical and Pharmacology Journal, vol. 11, no. 3, pp. 1573-1581, 2018.

M. Q. Al-Rifaiy, "The effect of mechanical and chemical polishing techniques on the surface roughness of denture base acrylic resins," The Saudi dental journal, vol. 22, no. 1, pp. 13-17, 2010.

N. H. Mohammed, "The effect of different types of separating medium on the hardness of different types of heat-cure acrylic resin materials," Medical Journal of Babylon, vol. 11, no. 3, pp. 290-298, 2014.

O. Sahin, A. K. Ozdemir, M. Turgut, A. Boztug, and Z. J. T. j. o. a. p. Sumer, "Investigation of flexural strength and cytotoxicity of acrylic resin copolymers by using different polymerization methods," vol. 7, no. 2, p. 98, 2015.

M. C. Goiato, A. A. Pesqueira, C. R. da Silva, H. Gennari Filho, and D. M. Dos Santos, "Patient satisfaction with maxillofacial prosthesis. Literature review," Journal of Plastic, Reconstructive & Aesthetic Surgery, vol. 62, no. 2, pp. 175-180, 2009.

N. Ihab and M. Moudhaffar, "Evaluation the effect of modified nano-fillers addition on some properties of heat cured acrylic denture base material," Journal of Baghdad college of dentistry, vol. 23, no. 3, pp. 23-29, 2011.

J. Arab, J. Newton, and C. Lloyd, "The effect of an elevated level of residual monomer on the whitening of a denture base and its physical properties," Journal of dentistry, vol. 17, no. 4, pp. 189-194, 1989.

J. Pavlinec, M. Lazar, and I. Janigova, "Influence of crosslinking on surface hardness of poly (methyl methacrylate)," Journal of Macromolecular Science, Part A, vol. 34, no. 1, pp. 81-90, 1997.

A. Porwal, M. Khandelwal, V. Punia, and V. Sharma, "Effect of denture cleansers on color stability, surface roughness, and hardness of different denture base resins," The Journal of the Indian Prosthodontic Society, vol. 17, no. 1, p. 61, 2017.

T. R. Cunha, R. R. Regis, M. R. Bonatti, and R. F. d. Souza, "Influence of incorporation of fluoroalkyl methacrylates on roughness and flexural strength of a denture base acrylic resin," Journal of Applied Oral Science, vol. 17, no. 2, pp. 103-107, 2009.

Downloads

Published

2021-12-31

How to Cite

Hadi, H. M., Haddad, A. I., & kati, F. A. (2021). Effect of Ethylmethacrylate and Isobutylmethacrylate on Surface Hardness and Surface Roughness of Heat-Cure Ocular Acrylic Resins. Journal of Techniques, 3(4), 52–57. https://doi.org/10.51173/jt.v3i4.394

Issue

Section

Medical techniques

Similar Articles

<< < 1 2 3 4 5 6 

You may also start an advanced similarity search for this article.