Beyond light: evaluating the characteristics of lower-cost LED Curing Units for resin composite polymerization

Autores

  • Laís da Mata Almeida Universidade de Brasília - UnB, Brasília-DF, Brasil https://orcid.org/0000-0003-4289-8317
  • Stella Sueli Lourenço Braga Universidade Federal de Uberlândia - UFU, Uberlândia-MG, Brasil
  • Maria Tereza Hordones Ribeiro Universidade Federal de Uberlândia - UFU, Uberlândia-MG, Brasil
  • Rayssa Ferreira Zanatta Universidade de Brasília - UnB, Brasília-DF, Brasil
  • Carlos José Soares Universidade Federal de Uberlândia - UFU, Uberlândia-MG, Brasil https://orcid.org/0000-0002-8830-605X
  • Crisnicaw Verissimo Universidade Federal de Goiás - UFG, Goiânia-GO, Brasil https://orcid.org/0000-0002-8146-9606

Palavras-chave:

curing lights, light, polymerization, mechanical tests, composite resins

Resumo

Objective: This study aimed to evaluate the irradiance (mW/cm2), emission spectrum (mW/nm), radiant exposure (J/cm²), beam profile, and depth of cure of a resin composite light-cured using different low-cost LED light-curing units (LCUs). Materials & Methods: It was tested the following devices: Dental Wireless; LY-A180; LY-B200. The VALO (polywave) and Elipar DeepCure-L (monowave) were used as control groups. Irradiance, emission spectrum, and radiant exposure were evaluated using the MARC Resin Calibrator. The Knoop microhardness test evaluated the depth of cure and elastic modulus. Depth of cure data was analyzed using the Shapiro-Wilk test, Levene’s test, ANOVA, Tukey HSD (α=0.05), and multiple linear regression analysis. Results: VALO and Elipar DeepCure-L showed a homogeneous radiant exitance. ANOVA showed that LCUs and restoration depth (p<.001) were significant, but the interaction was not. Multiple linear regression showed a significant relation between Elastic modulus, Irradiance, and depth of restoration (p=.350). Conclusions: Depth of cure tests showed that lower-cost LCUs tested showed satisfactory results; however, when all the variables were compared, they showed an inferior performance compared to the LCUs used as control.

Biografia do Autor

Laís da Mata Almeida , Universidade de Brasília - UnB, Brasília-DF, Brasil

Cirurgiã-dentista graduada pela Universidade de Brasília, especialista em Prótese Dentária pela Universidade Federal de Goiás e mestre em Clínica Odontológica com ênfase em Dentística pela mesma instituição. Atualmente, é doutoranda em Odontologia na Universidade de Brasília, desenvolvendo pesquisas na área de Dentística.

Stella Sueli Lourenço Braga , Universidade Federal de Uberlândia - UFU, Uberlândia-MG, Brasil

Cirurgiã-dentista, mestre e doutora em Clínica Odontológica pela Universidade Federal de Uberlândia, com período de doutorado sanduíche na Dalhousie University, Canadá. Possui experiência em pesquisa na área de Odontologia Restauradora e Biomecânica Aplicada à Odontologia. Atualmente atua como Scientific Affairs Education na 3M, desenvolvendo atividades voltadas à educação científica e suporte técnico-científico.

Maria Tereza Hordones Ribeiro , Universidade Federal de Uberlândia - UFU, Uberlândia-MG, Brasil

Cirurgiã-dentista, mestre em Odontologia e doutora em Clínica Odontológica pela Universidade Federal de Uberlândia. É especialista em Prótese Dentária pela Faculdade de Odontologia de Bauru (FOB/USP) e participou de programa internacional de pesquisa na Dalhousie University, Canadá. Atua em pesquisas nas áreas de Odontologia Restauradora, Prótese Dentária e Biomecânica Aplicada à Odontologia.

Rayssa Ferreira Zanatta , Universidade de Brasília - UnB, Brasília-DF, Brasil

Cirurgião-dentista, mestre em Clínica Odontológica pela Universidade Federal de Uberlândia e doutor em Odontologia Restauradora pela UNESP. Atualmente é docente da Faculdade de Odontologia da Universidade Federal de Uberlândia. Desenvolve pesquisas em Dentística, com foco em lesões cervicais não cariosas, hipersensibilidade dentinária, desgaste dental erosivo, materiais bioativos e aplicações de tecnologias digitais e inteligência artificial na Odontologia.

Carlos José Soares , Universidade Federal de Uberlândia - UFU, Uberlândia-MG, Brasil

Cirurgião-dentista, especialista em Dentística, mestre e doutor em Clínica Odontológica pela FOP/UNICAMP, com pós-doutorado na University of Minnesota. É Professor Titular da Faculdade de Odontologia da Universidade Federal de Uberlândia, Diretor do Hospital Odontológico da UFU e coordenador de importantes redes nacionais de pesquisa em Saúde Oral. Desenvolve pesquisas em Dentística Restauradora, Materiais Odontológicos e Biomecânica Aplicada à Odontologia.

Crisnicaw Verissimo, Universidade Federal de Goiás - UFG, Goiânia-GO, Brasil

Cirurgião-dentista, mestre, doutor e pós-doutor em Odontologia pela Universidade Federal de Uberlândia. Atualmente é Professor Adjunto da Faculdade de Odontologia da Universidade Federal de Goiás e docente do Programa de Pós-graduação em Odontologia da UFG. Desenvolve pesquisas nas áreas de Materiais Dentários, Dentística Restauradora e Biomecânica Aplicada à Odontologia.

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Arquivos adicionais

Publicado

2026-09-14

Como Citar

Almeida , L. da M., Braga , S. S. L., Ribeiro , M. T. H., Ferreira Zanatta , R., Soares , C. J., & Verissimo, C. (2026). Beyond light: evaluating the characteristics of lower-cost LED Curing Units for resin composite polymerization. Revista De Ensino, Pesquisa E Extensão Em Saúde, 1(1), 1–14. Recuperado de https://revistas.uniube.br/index.php/epex/article/view/1879

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