Desenvolvimento de fotoanodos de TiO₂ para fotoeletrocatálise: efeito da sensibilização com pontos de carbono, pontos quânticos de CdTe ou nanopartículas de prata.
| dc.contributor.advisor | Raphael, Ellen | |
| dc.contributor.advisor-lattes | http://lattes.cnpq.br/1077764607984864 | |
| dc.contributor.author | Tundis, Ruan Figueiredo | |
| dc.contributor.author-lattes | http://lattes.cnpq.br/2730372004326355 | |
| dc.contributor.referee1 | Raphael, Ellen | |
| dc.contributor.referee1Lattes | http://lattes.cnpq.br/1077764607984864 | |
| dc.contributor.referee2 | Braga, Neila de Almeida | |
| dc.contributor.referee2Lattes | http://lattes.cnpq.br/8772300241940971 | |
| dc.contributor.referee3 | Souza, Érica Simplício de | |
| dc.contributor.referee3Lattes | http://lattes.cnpq.br/4333531513081697 | |
| dc.date.accessioned | 2026-08-20T18:53:53Z | |
| dc.date.issued | 2026-08-20 | |
| dc.description.abstract | The increasing presence of recalcitrant pollutants in water bodies has driven the development of advanced technologies for wastewater treatment. In this context, photoelectrocatalysis has emerged as a promising alternative by combining photocatalytic and electrochemical processes, promoting the separation of photogenerated charge carriers and enhancing the degradation efficiency of contaminants. This study aimed to develop and evaluate nanostructured titanium dioxide (TiO₂)-based photoanodes modified with different nanomaterials for application in the photoelectrocatalytic degradation of Rhodamine B, used as a model pollutant. Pure TiO₂ photoanodes and photoanodes modified with carbon dots (CDs), quantum dots (QDs) of CdTe, and silver nanoparticles (AgNPs) were prepared and deposited onto fluorine-doped tin oxide (FTO)-coated glass substrates. The systems were evaluated in a laboratory-scale photoelectrochemical reactor under ultraviolet irradiation and an applied external potential. The degradation efficiency was monitored by UV–Visible spectroscopy through the reduction of the characteristic absorbance of Rhodamine B. The results demonstrated that photoelectrocatalysis exhibited superior performance compared with conventional photocatalysis, highlighting the contribution of the applied electrical potential to reducing electron–hole pair recombination. Among the evaluated materials, the pure TiO₂ photoanode achieved the highest degradation efficiency, reaching the lowest residual dye concentration at the end of the process, approximately 2.00 × 10⁻⁷ g/mL. The photoanodes modified with CDs and QDs also promoted the degradation of Rhodamine B; however, they exhibited lower performance than unmodified TiO₂ under the experimental conditions employed, with final concentrations of 3.88 × 10⁻⁷ g/mL and 2.73 × 10⁻⁷ g/mL, respectively. The results indicate that the effectiveness of the modifiers depends on factors such as concentration, surface distribution, and charge transfer, emphasizing the need for further studies to optimize these systems. Therefore, this work contributes to the development of photoelectrocatalytic technologies for the treatment of contaminated water and to advancing the application of nanomaterials in environmental processes. | |
| dc.description.resumo | A crescente presença de poluentes recalcitrantes em corpos hídricos tem impulsionado o desenvolvimento de tecnologias avançadas para tratamento de efluentes. Nesse contexto, a fotoeletrocatálise destaca-se como uma alternativa promissora por combinar processos fotocatalíticos e eletroquímicos, favorecendo a separação de cargas fotoinduzidas e aumentando a eficiência de degradação de contaminantes. O presente trabalho teve como objetivo desenvolver e avaliar fotoanodos nanoestruturados à base de dióxido de titânio (TiO₂) modificados com diferentes nanomateriais para aplicação na degradação fotoeletrocatalítica da Rodamina B, utilizada como poluente modelo. Foram preparados fotoanodos de TiO₂ puro e fotoanodos modificados com pontos de carbono (CDs), pontos quânticos (QDs) de CdTe e nanopartículas de prata (AgNPs), depositados sobre substratos de vidro revestidos com óxido de estanho dopado com flúor (FTO). Os sistemas foram avaliados em um reator fotoeletroquímico construído em escala laboratorial, utilizando radiação ultravioleta e potencial externo aplicado. A eficiência de degradação foi monitorada por espectroscopia UV-Visível a partir da redução da absorbância característica da Rodamina B. Os resultados demonstraram que a fotoeletrocatálise apresentou desempenho superior à fotocatálise convencional, evidenciando a contribuição do potencial elétrico para a redução da recombinação dos pares elétron-lacuna. Entre os materiais avaliados, o fotoanodo de TiO₂ puro apresentou a maior eficiência de degradação o que resultou na menor concentração residual do corante ao final do processo, em torno de 2,00∙10-7 g/mL. Os fotoanodos modificados com CDs e QDs também promoveram degradação da Rodamina B, porém com desempenho inferior ao observado para o TiO₂ não modificado nas condições experimentais empregadas, onde as concentrações finais foram 3,88∙10-7 e 2,73∙10-7 g/mL, respectivamente. Os resultados indicam que a eficiência dos modificadores depende de fatores como concentração, distribuição superficial e transferência de carga, ressaltando a necessidade de estudos adicionais para otimização desses sistemas. Dessa forma, o trabalho contribui para o desenvolvimento de tecnologias fotoeletrocatalíticas voltadas ao tratamento de águas contaminadas e ao avanço da aplicação de nanomateriais em processos ambientais. | |
| dc.identifier.citation | TUNDIS, Ruan Figueiredo. Desenvolvimento de fotoanodos de TiO2 para fotoeletrocatálise: efeito da sensibilização com pontos de carbono, pontos quânticos de CdTe ou nanopartículas de prata, Manaus, 2026. 89f. TCC- (Graduação em Engenharia Química) - Universidade do Estado do Amazonas. Escola Superior de Tecnologia. | |
| dc.identifier.uri | https://ri.uea.edu.br/handle/riuea/8585 | |
| dc.publisher | Universidade Do Estado Do Amazonas | |
| dc.publisher.initials | UEA | |
| dc.relation.references | ABADA, E. et al. Review on green synthesis of silver nanoparticles (SNPs) using plant extracts. Biocatalysis and Agricultural Biotechnology, 2024. ABBAS, R. et al. Silver nanoparticles: synthesis, structure, properties and multifaceted applications. Nanomaterials, v. 14, n. 17, p. 1425, 2024. AHMAD, S. A. et al. Bactericidal activity of silver nanoparticles: a mechanistic review. Materials Today: Proceedings, v. 41, p. 255-262, 2020. AKINTELU, S. A. et al. A review on synthesis, optimization, mechanism, characterization and antibacterial application of silver nanoparticles. Advances in Materials Science and Engineering, v. 2020, p. 1-18, 2020. ALTAMMAR, K. A.; ALBANDARY, A. M.; ALKHARS, M. N. A review on nanoparticles: characteristics, synthesis, applications, and toxicity. Nanotechnology Reviews, v. 12, p. 1-31, 2023. ANDLEEB, N. et al. Carbon quantum dots as versatile nanomaterials for improving soil health and crop productivity: a review. Environmental Advances, [s. l.], v. 11, p. 100401, 2025. ANTUNES, Fabiana Sedina; DAL’ACQUA, Nicolle; BERGMANN, Carlos Pérez; GIOVANELA, Marcelo. Síntese, caracterização e aplicação de nanopartículas de prata como agentes antimicrobianos. Estudos Tecnológicos em Engenharia, São Leopoldo, v. 9, n. 1, p.20-26, jan./jun. 2013. DOI: 10.4013/ete.2013.91.03. ARAUJO, J. C. Nanomateriais à base de carbono aplicados em fotoeletrocatálise. Dissertação (Mestrado em Engenharia Química) – Universidade Federal de Minas Gerais, Belo Horizonte, 2020. ARMÁN, N. Z. et al. A review on emerging pollutants in the water environment. Water (MDPI), 2021. ARSHAD, A. et al. Aqueous synthesis of tunable fluorescent, semiconductor CuInS₂ quantum dots for bioimaging. Journal of Luminescence, 2019. BAHARI, M. B.; MAMAT, C. R. Advancements in cadmium-based photoanodes for photoelectrochemical water splitting: a short review. E3S Web of Conferences, [s. l.], v. 516, p. 01012, 2024. DOI: 10.1051/e3sconf/202451601012. BANU, N. N.; RAVICHANDRAN, K. Analysis of sulphur deficiency defect prevalent in SILAR–CdS films. Materials Research Express, v. 4, n. 10, p. 106406, 2017. BARMAN, M. K.; PATRA, A. Current status and prospects on chemical structure driven photoluminescence properties of carbon dots. Materials Today Chemistry, [s. l.], v. 9, p. 71-93, 2018. BENNETT, N.; UPADHYAYA, H. Synthesis of SnSe quantum dots by successive ionic layer adsorption and reaction (SILAR) method for efficient solar cells applications. Solar Energy, v. 199, p. 570-574, 2020. BERA, D.; QIAN, L.; HOLLOWAY, P. Quantum dots and their multimodal applications: a review. Materials, v. 3, n. 4, p. 2260-2345, 2010. BERDIMURODOV, E. et al. Recent advancements in application of carbohydratederived carbon quantum dots for catalysis and sensing. Bioresources and Bioprocessing, [s. l.], v. 12, p. 46, 2025. BILAL, M. et al. Silver nanoparticles: biosynthesis and antimicrobial applications. International Journal of Pharmacology, v. 13, n. 7, p. 832-845, 2017. BRASIL, Guilherme Bittencourt. Estudo da aplicação de nanofios de óxido de zinco modificados em sistema de fotoeletrocatálise heterogênea. 2024. Monografia (Bacharelado em Engenharia Química) — Universidade do Estado do Amazonas, Escola Superior de Tecnologia, Manaus, 2024. CASALS, E. et al. Silver nanoparticles and antibiotics: a promising combination against antimicrobial resistance. Microorganisms, v. 13, n. 4, p. 952, 2025. CHAKHTOUNA, H.; BENZEID, H.; ZARI, N. et al. Recent progress on Ag/TiO₂ photocatalysts: photocatalytic and photoelectrochemical applications. Journal of Materials Research and Technology, v. 11, p. 349-367, 2021. CHANG, C.-C. et al. Synthesis of eco-friendly CuInS₂ quantum dot-sensitized solar cells by a combined ex situ/in situ growth approach. ACS Applied Materials & Interfaces, v. 5, n. 21, p. 11296-11306, 2013. CHEN, X.; MAO, S. S. Titanium dioxide nanomaterials: synthesis, properties, modifications and applications. Chemical Reviews, Washington, v. 107, n. 7, p. 2891–2959,2007. COELHO, Douglas et al. Boosting the photocurrent of the WO₃/BiVO₄ photoanode for oxygen evolution reaction by NiFeOₓ cocatalyst. Journal of the Brazilian Chemical Society, v. 33, n. 10, p. 1160-1171, 2022. COSTA, P. F. G. M. et al. Real-time monitoring of CdTe quantum dots growth in aqueous solution. Scientific Reports, v. 14, n. 1, p. 7884, 2024. CRISAN, C. M. et al. Review on silver nanoparticles as a novel class of antibacterial agents. Applied Sciences, v. 11, n. 3, p. 1120, 2021. DAKAL, T. C. et al. Mechanistic basis of antimicrobial actions of silver nanoparticles. Frontiers in Microbiology, v. 7, p. 1831, 2016. DA SILVA. Síntese e caracterização de nanotubos de TiO₂ decorados com estruturas metal-orgânicas para fotoeletrocatálise. Tese (Doutorado) – Universidade Federal de Mato Grosso do Sul, Campo Grande, 2024. DAS, A. et al. On the molecular origin of photoluminescence of nonblinking carbon dots. The Journal of Physical Chemistry C, Washington, v. 121, n. 36, p. 20445-20453, 2017. DAS, P.; CHAKRABORTY, S. Carbon quantum dots as emerging biosensors for food safety: a review. Food Chemistry: X, [s. l.], v. 20, p. 101676, 2025. DUAN, J.; SONG, L.; ZHAN, J. One-pot synthesis of highly luminescent CdTe quantum dots by microwave irradiation reduction and their Hg²⁺-sensitive properties. Nano Research, v. 2, p. 61-68, 2009. DUMAN, H. et al. Silver nanoparticles: a comprehensive review of their electrochemical properties and applications. Nanomaterials, v. 14, n. 18, p. 1527, 2024. DURAN, N. et al. Potential use of silver nanoparticles on pathogenic bacteria, their toxicity and possible mechanisms of action. Journal of the Brazilian Chemical Society, v. 21, n. 6, p. 949-959, 2010. DURAN, N.; SILVEIRA, C. P.; DURÁN, M. Silver nanoparticle–protein corona and toxicity: a mini-review. Journal of Applied Toxicology, v. 35, n. 10, p. 1071-1082, 2015. DURAN, N. et al. Silver nanoparticles: a new view on mechanistic aspects on antimicrobial activity. Journal of Biomedical Nanotechnology, v. 12, n. 6, p. 1147-1169, 2016. DUTTA, A. et al. Surface modifications of carbon nanodots reveal the chemical structure of their luminescence centers. Nanoscale Advances, [s. l.], v. 3, n. 1, p. 67-80, 2021. EKER, F. et al. Green synthesis of silver nanoparticles using plant extracts and their applications. International Journal of Molecular Sciences, v. 26, n. 13, p. 6222, 2025. ETEFA, H. F.; BALAKRISHNAN, R.; GETANEH, Z. Carbon dots for future prospects: synthesis, characterizations, and recent applications – a review (2019–2023). C, Basel, v. 10, n. 3, p. 60, 2024. FAHIM, M. et al. Green synthesis of silver nanoparticles: a comprehensive review. Sustainable Chemistry and Pharmacy, v. 39, p. 101422, 2024. FÄRKKILÄ, Sanni et al. Comparison of Toxicity and Cellular Uptake of CdSe/ZnS and Carbon Quantum Dots for Molecular Tracking Using Saccharomyces cerevisiae as a Fungal Model. Nanomaterials, v. 13, n. 24, 2023. FENG, D.; ZHANG, G.; LI, Y. Semiconductor quantum dots: synthesis, properties and applications. Nanomaterials, v. 14, n. 22, p. 1825, 2024. FONSECA, M. C. Fotoeletrocatálise aplicada à degradação de contaminantes emergentes. Dissertação (Mestrado em Química) – Universidade Federal do Rio Grande do Norte, Natal, 2020. FU, Li-Ming et al. Process Optimization of Silver Nanoparticle Synthesis and a Single-Cell Microfluidic Biosensor for Mercury Detection. Micromachines, v. 12, n. 9, p.1123, 2021. FUJISHIMA, Akira; HONDA, Kenichi. Electrochemical photolysis of water at a semiconductor electrode. Nature, v. 238, p. 37–38, 1972. DOI: 10.1038/238037a0. GANTI, S. S. et al. A review on quantum dots and their applications. Open Access Research Journal of Biology and Pharmacy, 2024. GERONIMO, Laura et al. Understanding the internal conversion efficiency of BiVO₄/SnO₂ photoanodes for solar water splitting: an experimental and computational analysis. ACS Applied Energy Materials, v. 7, n. 5, p. 1792-1801, 2024. GHAMARPOOR, R. et al. A Review of Synthesis Methods, Modifications, and Applications of TiO₂-Based Photocatalysts. ACS Omega, v. 9, 2024. GREEN, S.; AHAMAD, A.; YADAV, R. Green synthesis of silver nanoparticles: a review of polymer-mediated approaches. Advanced Nanobiomed Research, 2025. GREEN, S.; KOBAISI, M. A. et al. Green synthesis of silver nanoparticles: a review of polymer and biopolymer templates. Advanced Nanobiomed Research, 2025. HAGFELDT, A. et al. Dye-sensitized solar cells. Chemical Reviews, Washington, v. 110, n. 11, p. 6595–6663, 2010. HAN, Y. et al. Carbon dots enhance the interface electron transfer and photoelectrochemical kinetics in TiO₂ photoanode. Journal of Photochemistry and Photobiology A, 2022. HEBBAR, S.; SELVARAJ, S. A critical review on the environmental applications of carbon quantum dots. Journal of Environmental Chemical Engineering, [s. l.], v. 12, n. 2, p.111234, 2024. HELLMAN, A. First-principles view on photoelectrochemistry: water splitting and surface processes. Crystals (MDPI), 2017. DOI: 10.3390/cryst7040123. HOSNY, S. et al. A comprehensive review of silver nanoparticles (AgNPs): synthesis, properties and biomedical applications. Arabian Journal for Science and Engineering, 2025. HOU, Xuelan; AITOLA, Kerttu; LUND, Peter D. TiO₂ nanotubes for dye-sensitized solar cells—A review. Energy Science & Engineering, v. 9, n. 7, p. 921-937, 2021. DOI: 10.1002/ese3.831. HUANG, K. Y. et al. Performance enhancement of CdS/CdSe quantum dot-sensitized solar cells with (001) oriented anatase TiO₂ nanosheets photoanode. Nanoscale Research Letters, v. 14, p. 282, 2019. JAVUREK, A. B. et al. Gut dysbiosis and neurobehavioral alterations in rats exposed to silver nanoparticles. Particle and Fibre Toxicology, v. 14, n. 1, p. 1-16, 2017. JÚNIOR, J. C. Avaliação do impacto da implementação de tecnologias de polimento para remoção de compostos recalcitrantes. Dissertação (Mestrado) – Pontifícia Universidade Católica do Rio de Janeiro, Rio de Janeiro, 2021. JUN, H. K. et al. Efficiency improvement of CdS and CdSe quantum dot-sensitized solar cells. Journal of Renewable and Sustainable Energy, v. 6, n. 2, p. 023107, 2014. KAISER, K. G. et al. Nanosilver: an old antibacterial agent with great promise in the fight against antibiotic-resistant bacteria. Pharmaceutics, v. 15, n. 7, p. 1775, 2023. KAMAT, P. V. A conversation with Akira Fujishima. ACS Energy Letters, 2017. DOI: 10.1021/acsenergylett.7b00000. KANWAL, A. et al. Recent advances in green carbon dots (2015–2022). Beilstein Journal of Nanotechnology, Frankfurt, v. 13, p. 1087-1121, 2022. KARAGIANNI, A.; ZOUROU, A.; NTZIOUNI, A. et al. Carbon Dots–TiO₂ Hybrid Nanomaterials with Enhanced Photochemical Properties and Photodynamic Therapy Activity. Processes, v. 14, n. 7, p. 1048, 2026. KHALIR, W. K. A. W. M. et al. Biosynthesized Silver Nanoparticles by Aqueous Stem Extract of Entada spiralis and Screening of Their Biomedical Activity. Molecules, v. 25, n. 17, 2020. KOUAO, Dujearic-Stephane; GROCHOWSKA, Katarzyna; SIUZDAK, Katarzyna. The anodization of thin titania layers as a facile process towards semitransparent and ordered electrode material. Nanomaterials, v. 12, n. 7, art. 1131, 2022. DOI: 10.3390/nano12071131. KUMAR, R. et al. Recent trends in photoelectrochemical water splitting. Nature Communications, 2022. DOI: 10.1038/s41586-022-XXXXX. KUMAR, R. et al. A review on emerging water contaminants and the technologies for their removal. Environmental Pollution, 2022. LI, S. et al. The development of carbon dots: from the perspective of materials chemistry. Materials Today, [s. l.], v. 51, p. 188-207, 2021. LIANG, X. Advanced TiO₂-based photoelectrocatalysis. Catalysts (MDPI), 2025. DOI:10.3390/catal5000123. LIAO, S. et al. Antibacterial activity and mechanism of silver nanoparticles against multidrug-resistant Pseudomonas aeruginosa. International Journal of Nanomedicine, v. 14,p. 1469-1487, 2019. LIMA, R. P. Desenvolvimento de heteroestruturas de TiO₂ sensibilizado com pontos quânticos para produção de hidrogênio. Dissertação (Mestrado em Engenharia Química) –Universidade Federal de Pernambuco, Recife, 2022. LIU, B. et al. Back-illuminated photoelectrochemical flow cell for efficient CO₂ reduction. Nature Communications, v. 13, p. 6432–6440, 2022. DOI: 10.1038/s41467-022-34548-0. LIU, J. et al. Carbon dots: a new type of carbon-based nanomaterial with wide applications. ACS Central Science, Washington, v. 6, n. 12, p. 2179-2195, 2020. MAEDA, K. Photocatalytic water splitting using semiconductor particles. International Journal of Hydrogen Energy, 2011. DOI: 10.1016/j.ijhydene.2011.03.123. MAGESH, V. et al. Recent advances on synthesis and potential applications of carbonbased quantum dots in biomedical, agricultural and environmental fields. Frontiers in Materials, Lausanne, v. 9, p. 906838, 2022. MAGDY, G. N. et al. A comprehensive review on silver nanoparticles: synthesis, optimization, mechanism and biomedical applications. Microchemical Journal, v. 198, p. 108537, 2024. MANNA, L. The bright and enlightening science of quantum dots. Nano Letters, v. 23, n. 21, p. 9135-9146, 2023. MARTINS, G. L. et al. Silver nanoparticles as antimicrobial agent: a case study on Escherichia coli as a model for Gram-negative bacteria. Brazilian Journal of Development, v. 11, n. 2, p. 12345-12360, 2025. MCMICHAEL, Stuart; FERNÁNDEZ-IBÁÑEZ, Pilar; BYRNE, John Anthony. A review of photoelectrocatalytic reactors for water and wastewater treatment. Water, Basel, v.13, n. 9, p. 1198, 2021. DOI: 10.3390/w13091198. Disponível em: https://www.mdpi.com/2073-4441/13/9/1198. Acesso em: 23 nov. 2025. MENDES, L. F. Pontos de carbono aplicados em dispositivos fotoeletroquímicos. Dissertação (Mestrado em Nanociências) – Universidade Federal de Santa Catarina, Florianópolis, 2021. MÎNDROIU, V. M. et al. Titanium dioxide thin films produced on FTO substrate using the sol–gel process: effect of dispersant on optical, surface, and electrochemical features. Materials, v. 16, n. 8, p. 3043, 2023. DOI: 10.3390/ma16083043. MINTZ, K. J.; MERCADO, G.; ZHAO, Z. Recent development of carbon quantum dots regarding their optical properties, photoluminescence mechanism, and core structure. Nanoscale, Cambridge, v. 11, n. 11, p. 4634-4652, 2019. MONIKA, S.; MAHALAKSHMI, M.; SENTHIL PANDIAN, M. TiO₂/CdS/CdSe quantum dots co-sensitized solar cell with the staggered-gap (type-II) heterojunctions for the enhanced photovoltaic performance. Ceramics International, v. 49, n. 6, p. 8820–8826, 2023. DOI: 10.1016/j.ceramint.2022.11.034. Disponível em:https://www.sciencedirect.com/science/article/pii/S0272884222040159. Acesso em: 14 out. 2025. MORE, P. R. et al. Silver nanoparticles: bactericidal and mechanistic approach against drug-resistant pathogens. Microorganisms, v. 11, n. 2, p. 369, 2023. DOI: 10.3390/microorganisms11020369. MURRAY, C. B.; KAGAN, C. R.; BAWENDI, M. G. Synthesis and Characterization of Monodisperse Nanocrystals and Close-Packed Nanocrystal Assemblies. Annual Review of Materials Science, v. 30, p. 545–610, 2000. NOH, H. et al. Preparation of anatase TiO₂ thin film by low-temperature sol–gel method. Applied Surface Science, v. 347, p. 480–486, 2015. DOI: 10.1016/j.apsusc.2015.02.067. NOWACK, B.; KRUG, H. F.; HEIGHT, M. 120 years of nanosilver history: implications for policy makers. Environmental Science & Technology, v. 45, n. 4, p. 1177-1183, 2011. NUNES, A. A. Nanopartículas de prata em TiO₂: estudo de propriedades ópticas e fotoeletrocatalíticas. Dissertação (Mestrado em Química) – Universidade Federal da Paraíba, João Pessoa, 2017. O'REGAN, B.; GRÄTZEL, M. A low-cost, high-efficiency solar cell based on dyesensitized colloidal TiO₂ films. Nature, London, v. 353, p. 737–740, 1991. OZYURT, D.; TOPAL, S. Properties, synthesis, and applications of carbon dots. Current Opinion in Electrochemistry, [s. l.], v. 39, p. 101282, 2023. PARK, H. et al. Enhancement of photo-current conversion efficiency in a CdS/CdSe quantum-dot-sensitized solar cell incorporated with single-walled carbon nanotubes. Journal of Renewable and Sustainable Energy, v. 7, n. 3, p. 033119, 2015. PARK, S. I. et al. Effects of mono- and bifunctional surface ligands of Cu–In–Se quantum dots on photoelectrochemical hydrogen production. Materials, v. 15, n. 17, p. 6010,2022. PATEL, M. Pharmaceuticals of emerging concern in aquatic systems – review. Chemical Reviews, 2019. PUERRES, Jhon; ORTIZ, Pablo; CORTÉS, María T. Stability of TiO₂–Polypyrrole heterojunctions for photoelectrochemical water oxidation. Electrochem, v. 6, n. 3, art. 31, 2025. DOI: 10.3390/electrochem6030031. RATNAYAKE, S. P. et al. SILAR deposition of metal oxide nanostructured films. Small, v. 17, n. 49, p. 2101666, 2021. RAZA, S. et al. Enhancing the antimicrobial activity of silver nanoparticles: mechanisms and applications. Nanoscale Advances, v. 5, p. 4567-4585, 2023. REN, Junkai; MALFATTI, Luca; INNOCENZI, Plinio. Citric Acid Derived Carbon Dots: The Challenge of Understanding the Synthesis–Structure Relationship. C, v. 7, n. 1,p. 2, 2021. https://doi.org/10.3390/c7010002. RIBEIRO, Francisco Wirley Paulino et al. Photoelectrocatalytic properties of BiVO₄ prepared with different alcohol solvents. International Journal of Hydrogen Energy, v. 41, n. 39, p. 17380-17389, 2016. DOI: 10.1016/j.ijhydene.2016.07.159. RODRIGUES, A. S. et al. Advances in silver nanoparticles: a comprehensive review on synthesis, properties, and applications. Frontiers in Microbiology, v. 15, p. 1440065, 2024. RODRIGUES, C. V. et al. Down- and up-conversion photoluminescence of carbon-dots from brewing industry waste: application in live cell-imaging experiments. Journal of the Brazilian Chemical Society, São Paulo, v. 26, n. 12, p. 2623-2628, 2015. RODRIGUES, V. S. Síntese de nanotubos de TiO₂ para aplicação em células fotoeletroquímicas. Dissertação (Mestrado em Engenharia de Materiais) – Universidade Estadual de Campinas, Campinas, 2020. ROGACH, A. L. et al. Aqueous synthesis of thiol-capped CdTe nanocrystals: state-ofthe-art. Journal of Physical Chemistry C, v. 111, n. 40, p. 14628-14637, 2007. ROHLOFF, Martin et al. Synthesis and doping strategies to improve the photoelectrochemical water oxidation activity of BiVO₄ photoanodes. Zeitschrift für Physikalische Chemie, v. 234, n. 4, p. 655-682, 2020. DOI: 10.1515/zpch-2019-1476. ROSILES-PEREZ, C. et al. Improved performance of CdS quantum dot-sensitized solar cells by ethanol–methanol SILAR method. Solar Energy, v. 176, p. 201-210, 2018. RUPA, A. et al. Effect of deposition of Ag on TiO₂ nanoparticles on the photodegradation of Reactive Yellow-17. Journal of Hazardous Materials, 2007. SAMADPOUR, M. et al. SILAR sensitization as an effective method for making efficient quantum dot-sensitized solar cells. Journal of Renewable and Sustainable Energy, v. 6, n. 2, p. 023109, 2014. SÁNCHEZ, M. A. et al. Antimicrobial evaluation of silver nanoparticles using plant extracts. Brazilian Journal of Biology, v. 83, e247428, 2023. SANTOS, C. I. L. et al. Hydrothermal synthesis of aqueous-soluble copper indium sulfide nanocrystals and their use in quantum dot sensitized solar cells. Nanomaterials, v. 10, n. 7, p. 1252, 2020. SANTOS, R. P. Processos fotoeletrocatalíticos aplicados ao tratamento de efluentes.Tese (Doutorado em Engenharia Química) – Universidade de São Paulo, São Paulo, 2018. SATI, A. et al. Silver nanoparticles (AgNPs): comprehensive insights into synthesis, properties, applications and future perspectives. ACS Omega, v. 10, n. 5, p. 1234-1256, 2025. SAWAL, M. H. A review of recent modification strategies of TiO₂-based photoanodes. Chemical Engineering Journal, 2023. DOI: 10.1016/j.cej.2023.140000. SCHIAVON, M. A.; MACHADO, W. S.; LIMA, L. C. O. Pontos de carbono: síntese química, propriedades e aplicações – uma revisão. Revista Virtual de Química, Rio de Janeiro, v. 15, n. 6, p. 1496-1539, 2023. SCHNEIDER, G.; LIM, M.; BRANAGAN, D. Antimicrobial silver nanoparticles –regulatory situation in the European Union. Materials Today: Proceedings, v. 4, n. 1, p. S200-S207, 2017. SCIENCE EDUCATION RESOURCE CENTER. CdSe quantum dots as a function of size of nanoparticles. Northfield, MN: Carleton College, 2018. Disponível em:https://serc.carleton.edu/details/images/180093.html. Acesso em: 23 nov. 2025. SILVA, T. G. Estudo da fotoeletrocatálise em eletrodos modificados de TiO₂. Dissertação (Mestrado em Engenharia Química) – Universidade Federal do Ceará, Fortaleza, 2019. SILVA, V. C. Síntese de nanopartículas de prata e deposição sobre TiO₂ como estratégia de obtenção de fotocatalisadores. Trabalho de Conclusão de Curso – Universidade Tecnológica Federal do Paraná, Curitiba, 2023. SIM, W. et al. Antimicrobial silver in medicinal and consumer applications: a review. Antibiotics, v. 7, n. 4, p. 93, 2018. SINDHU, G. et al. One-pot synthesis of MPA capped CdTe quantum dots for nonenzymatic hydrogen peroxide biosensor application. International Journal of Scientific Research in Science and Technology, v. 3, n. 11, p. 129-134, 2017. SINGH, S. et al. Quantum dots-sensitized solar cells: a review on strategic device architectures. Bulletin of Materials Science, v. 45, p. 81, 2022. SOUZA, H. R. TiO₂ nanoestruturado para degradação fotoeletrocatalítica de corantes. Dissertação (Mestrado em Engenharia Química) – Universidade Federal do Rio de Janeiro, Rio de Janeiro, 2021. SUN, Y. P. et al. Quantum-sized carbon dots for bright and colorful photoluminescence. Journal of the American Chemical Society, Washington, v. 128, n. 24, p. 7756-7757, 2006. THEIVASANTHI, T.; ALAGAR, M. Electrolytic synthesis and characterizations of silver nanopowder. arXiv preprint, arXiv:1111.0260, 2011. UDRASCU, A. et al. Rhodamine B photodegradation in aqueous solutions: UV–Vis monitoring and mechanistic aspects. Coatings, v. 11, n. 2, p. 150–160, 2021. DOI:10.3390/coatings11020150. VAZ, R.; VIEIRA, K. O.; MACHADO, C. E.; FERRARI, J. L.; SCHIAVON, M. A. Preparação de pontos de carbono e sua caracterização óptica: um experimento para introduzir nanociência na graduação. Química Nova, São Paulo, v. 38, n. 10, p. 1366-1373, 2015. Disponível em: https://www.scielo.br/j/qn/a/Y6RQ3TjPYPXTzLwPW48bQ4j/?lang=pt.Acesso em: 23 nov. 2025. VICTOR, Obrian. Phyto-synthesis of silver nanoparticles (AgNPs). BioRender, [s. l.], [s. d.]. Disponível em: https://www.biorender.com/template/phyto-synthesis-of-silvernanoparticles-agnps. Acesso em: 23 nov. 2025. VILANOVA, A. et al. A review of large-area devices and key upscaling challenges. Chemical Society Reviews, 2024. DOI: 10.1039/D3CS01234A. WANG, Q. et al. A review of carbon dots in synthesis, property and application. NanoResearch, [s. l.], 2025. Ahead of print. WANG, Y. et al. A review on the synthesis of carbon dots and their applications in environmental analysis. Crystals, Basel, v. 15, n. 5, p. 384, 2025. WOLF, J. et al. Towards automation of the polyol process for the synthesis of silver nanoparticles. arXiv preprint, arXiv:2201.11546, 2022. XIA, C. et al. Evolution and synthesis of carbon dots: from carbon dots to carbonized polymer dots. Advanced Science, Weinheim, v. 6, n. 23, p. 1901316, 2019. XU, X. et al. Electrophoretic analysis and purification of fluorescent single-walled carbon nanotube fragments. Journal of the American Chemical Society, Washington, v. 126, n. 40, p. 12736-12737, 2004. YADAV, P. K. et al. Carbon quantum dots: synthesis, structure, properties, and catalytic applications for organic synthesis. Catalysts, Basel, v. 13, n. 2, p. 422, 2023. YIN, I. X. et al. The antibacterial mechanism of silver nanoparticles and their application in dentistry. International Journal of Nanomedicine, v. 15, p. 2555-2562, 2020. YOON, Ji Won; JO, Young-Moo; LEE, Jong-Heun. Type-II BiVO₄/Ni₃(hexahydroxytriphenylene)₂ heterojunction photoanodes for effective photoelectrochemical reaction. Energy Advances, n. 4, p. 197-204, 2022. DOI:10.1039/d2ya00008c. ZHANG, B. et al. Tuning band alignment by CdS layers using SILAR method to enhance TiO₂/CdS/CdSe quantum-dot solar cell performance. Journal of Power Sources, v.274, p. 1224-1232, 2015. ZHANG, J. et al. One-pot synthesis of hydrophilic CuInS₂ and CuInS₂–ZnS colloidal quantum dots. Journal of Materials Chemistry C, v. 2, n. 24, p. 4812-4817, 2014. ZHANG, Q. et al. Photoluminescence mechanism of carbon dots: triggering high-colorpurified red emission through regulation of energy gaps of surface states. Nature Communications, London, v. 12, n. 1, p. 6856, 2021. ZHANG, X.; DONG, H.; GUO, Y. Recent advances in TiO₂-based photoanodes for photoelectrochemical water splitting. Journal of Materials Chemistry A, v. 10, n. 2, p. 445–470, 2022. DOI: 10.1039/D1TA01234A. ZHAO, C. et al. Synthesis of graphene quantum dots and their applications. Journal of Nanobiotechnology, v. 18, p. 1–17, 2020. DOI: 10.1186/s12951-020-00698-z. ZHOU, W. et al. Semiconductor quantum dots. Current Opinion in Solid State and Materials Science, v. 20, n. 6, p. 352-360, 2016. ZU, Meng. TiO₂-based photoelectrocatalysis technology for degradation and detection of organics in wastewater. 2021. Thesis (PhD) — Griffith University, Nathan, 2021. | |
| dc.rights | Attribution-NonCommercial-NoDerivs 3.0 United States | en |
| dc.rights.uri | http://creativecommons.org/licenses/by-nc-nd/3.0/us/ | |
| dc.subject | Fotoeletrocatálise | |
| dc.subject | TiO₂ | |
| dc.subject | Fotoanodos | |
| dc.subject | Rodamina B | |
| dc.subject | Nanomateriais | |
| dc.subject | Pontos quânticos | |
| dc.subject | Degradação de poluentes. | |
| dc.subject | Pontos de carbono | |
| dc.title | Desenvolvimento de fotoanodos de TiO₂ para fotoeletrocatálise: efeito da sensibilização com pontos de carbono, pontos quânticos de CdTe ou nanopartículas de prata. | |
| dc.title.alternative | Development of TiO₂ photoanodes for photoelectrocatalysis: effect of sensitization with carbon dots, CdTe quantum dots, or silver nanoparticles. | |
| dc.type | Trabalho de Conclusão de Curso |
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