José Luis Clabel Huamán, Kelly Tasso de Paula, Filipe Assis Couto, Gaston Lozano Calderón, José Dirceu Vollet-Filho and Cleber Renato Mendonça*,
{"title":"增强La3+掺杂碲酸盐玻璃波导性能:能量诱导结构调谐以降低传输损耗","authors":"José Luis Clabel Huamán, Kelly Tasso de Paula, Filipe Assis Couto, Gaston Lozano Calderón, José Dirceu Vollet-Filho and Cleber Renato Mendonça*, ","doi":"10.1021/acsomega.5c0261010.1021/acsomega.5c02610","DOIUrl":null,"url":null,"abstract":"<p >Femtosecond (fs) laser irradiation of La<sup>3+</sup>-doped tellurium–zinc (TZL) glass induces structural transformations within the glass surface or volume, resulting in modified chemical compositions and network structures distinct from those of the bulk material. Fs-laser processing promotes the formation of TeO<sub>4</sub> by transforming TeO<sub>3</sub> with nonbridging oxygens (NBOs), stabilizing the network and reducing susceptibility to further structural rearrangements. Techniques such as Raman spectroscopy, SEM, and optical microscopy were used to investigate these structural changes and analyze the effects of La<sup>3+</sup> doping, with a particular focus on identifying TeO<sub>3</sub> and TeO<sub>4</sub> bonds and their impact on waveguide optical properties. Conventional methods for characterizing glass surface modifications often lack the sensitivity to capture the extensive, three-dimensional changes induced by femtosecond laser processing, underscoring the need for comprehensive spectroscopic and optical analyses. Using confocal 2D Raman spectroscopy and propagation loss measurements, we examined the laser-modified regions in the TZL glass waveguides. We found that structural changes driven by La<sup>3+</sup> concentration and the <i>I</i>(TeO<sub>3</sub>)/<i>I</i>(TeO<sub>4</sub>) ratio significantly influence light confinement and scattering. Complementary simulations validated these trends analytically; modeled electric field and refractive index profiles quantitatively confirmed that energy-induced densification in TeO<sub>4</sub>-rich regions enhances mode confinement and reduces propagation loss. Reduced propagation losses were observed in TeO<sub>4</sub>-rich regions (TZL9), whereas higher losses occurred in TeO<sub>3</sub>-rich regions (TZL5), highlighting the effectiveness of compositional tuning in enhancing waveguide performance through La<sup>3+</sup>-induced structural modifications. This represents a significant advance over previous studies by quantitatively correlating spectroscopic structural changes via the <i>I</i>(TeO<sub>3</sub>)/<i>I</i>(TeO<sub>4</sub>) ratio with waveguide optical performance. This ability to achieve low-loss waveguides through targeted structural adjustments in tellurite-based glasses offers promising applications in advanced photonic devices, such as all-optical switches and modulators, that require precise control over the optical loss and mode confinement.</p>","PeriodicalId":22,"journal":{"name":"ACS Omega","volume":"10 22","pages":"23696–23708 23696–23708"},"PeriodicalIF":4.3000,"publicationDate":"2025-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://pubs.acs.org/doi/epdf/10.1021/acsomega.5c02610","citationCount":"0","resultStr":"{\"title\":\"Enhancing Waveguide Performance in La3+-Doped Tellurite Glasses: Energy-Induced Structural Tuning for Reduced Propagation Loss\",\"authors\":\"José Luis Clabel Huamán, Kelly Tasso de Paula, Filipe Assis Couto, Gaston Lozano Calderón, José Dirceu Vollet-Filho and Cleber Renato Mendonça*, \",\"doi\":\"10.1021/acsomega.5c0261010.1021/acsomega.5c02610\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Femtosecond (fs) laser irradiation of La<sup>3+</sup>-doped tellurium–zinc (TZL) glass induces structural transformations within the glass surface or volume, resulting in modified chemical compositions and network structures distinct from those of the bulk material. Fs-laser processing promotes the formation of TeO<sub>4</sub> by transforming TeO<sub>3</sub> with nonbridging oxygens (NBOs), stabilizing the network and reducing susceptibility to further structural rearrangements. Techniques such as Raman spectroscopy, SEM, and optical microscopy were used to investigate these structural changes and analyze the effects of La<sup>3+</sup> doping, with a particular focus on identifying TeO<sub>3</sub> and TeO<sub>4</sub> bonds and their impact on waveguide optical properties. Conventional methods for characterizing glass surface modifications often lack the sensitivity to capture the extensive, three-dimensional changes induced by femtosecond laser processing, underscoring the need for comprehensive spectroscopic and optical analyses. Using confocal 2D Raman spectroscopy and propagation loss measurements, we examined the laser-modified regions in the TZL glass waveguides. We found that structural changes driven by La<sup>3+</sup> concentration and the <i>I</i>(TeO<sub>3</sub>)/<i>I</i>(TeO<sub>4</sub>) ratio significantly influence light confinement and scattering. Complementary simulations validated these trends analytically; modeled electric field and refractive index profiles quantitatively confirmed that energy-induced densification in TeO<sub>4</sub>-rich regions enhances mode confinement and reduces propagation loss. Reduced propagation losses were observed in TeO<sub>4</sub>-rich regions (TZL9), whereas higher losses occurred in TeO<sub>3</sub>-rich regions (TZL5), highlighting the effectiveness of compositional tuning in enhancing waveguide performance through La<sup>3+</sup>-induced structural modifications. This represents a significant advance over previous studies by quantitatively correlating spectroscopic structural changes via the <i>I</i>(TeO<sub>3</sub>)/<i>I</i>(TeO<sub>4</sub>) ratio with waveguide optical performance. 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Enhancing Waveguide Performance in La3+-Doped Tellurite Glasses: Energy-Induced Structural Tuning for Reduced Propagation Loss
Femtosecond (fs) laser irradiation of La3+-doped tellurium–zinc (TZL) glass induces structural transformations within the glass surface or volume, resulting in modified chemical compositions and network structures distinct from those of the bulk material. Fs-laser processing promotes the formation of TeO4 by transforming TeO3 with nonbridging oxygens (NBOs), stabilizing the network and reducing susceptibility to further structural rearrangements. Techniques such as Raman spectroscopy, SEM, and optical microscopy were used to investigate these structural changes and analyze the effects of La3+ doping, with a particular focus on identifying TeO3 and TeO4 bonds and their impact on waveguide optical properties. Conventional methods for characterizing glass surface modifications often lack the sensitivity to capture the extensive, three-dimensional changes induced by femtosecond laser processing, underscoring the need for comprehensive spectroscopic and optical analyses. Using confocal 2D Raman spectroscopy and propagation loss measurements, we examined the laser-modified regions in the TZL glass waveguides. We found that structural changes driven by La3+ concentration and the I(TeO3)/I(TeO4) ratio significantly influence light confinement and scattering. Complementary simulations validated these trends analytically; modeled electric field and refractive index profiles quantitatively confirmed that energy-induced densification in TeO4-rich regions enhances mode confinement and reduces propagation loss. Reduced propagation losses were observed in TeO4-rich regions (TZL9), whereas higher losses occurred in TeO3-rich regions (TZL5), highlighting the effectiveness of compositional tuning in enhancing waveguide performance through La3+-induced structural modifications. This represents a significant advance over previous studies by quantitatively correlating spectroscopic structural changes via the I(TeO3)/I(TeO4) ratio with waveguide optical performance. This ability to achieve low-loss waveguides through targeted structural adjustments in tellurite-based glasses offers promising applications in advanced photonic devices, such as all-optical switches and modulators, that require precise control over the optical loss and mode confinement.
ACS OmegaChemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍:
ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.