Gelişmiş Fotokatalitik Performans için Metal Oksit Nanomalzemelerin Katkılanmasına Yönelik Tasarım Stratejileri
5th International Conference on Chemistry and Chemical Engineering (ICCCE-2026), Vienna, Avusturya, 23 - 24 Temmuz 2026, ss.41, (Özet Bildiri)
- Yayın Türü: Bildiri / Özet Bildiri
- Doi Numarası: 10.51219/urforum.2026.salahaldeen-m-a-aljafreh
- Basıldığı Şehir: Vienna
- Basıldığı Ülke: Avusturya
- Sayfa Sayıları: ss.41
- Dokuz Eylül Üniversitesi Adresli: Evet
Özet
Photocatalytic metal oxide nanomaterials
have attracted significant attention for environmental remediation and
sustainable energy applications because of their chemical stability,
non-toxicity, and strong photocatalytic potential. However, their practical
efficiency is often limited by wide band gaps, insufficient visible-light
absorption, and rapid electron-hole recombination. This keynote highlights doping
and codoping as strategic approaches for overcoming these limitations and
advancing visiblelight-responsive photocatalytic nanomaterials. Particular
emphasis is placed on how dopant engineering modifies the structural,
electronic, and surface properties of metal oxides to improve photocatalytic
activity. Doping introduces defect states and alters electronic structures, enabling
bandgap narrowing, enhanced light absorption, oxygen vacancy formation, and
improved charge carrier dynamics. Nevertheless, single dopant incorporation may
also generate recombination centers that restrict photocatalytic efficiency.
Consequently, codoping has emerged as a more effective strategy because the
simultaneous incorporation of multiple dopants creates synergistic interactions
that stabilize defect states, promote efficient charge separation, and optimize
surface reaction pathways. Recent studies employing controlled sol-gel
synthesis demonstrate that codoping frameworks can systematically regulate
dopant concentrations, leading to developed nanostructures with enhanced visible-light
responsiveness and accelerated photocatalytic degradation of organic
pollutants. Characterization techniques, including XRD, SEM, FTIR, XPS, UV–Vis,
and photoluminescence analyses, reveal the direct relationship between defect
engineering and photocatalytic performance. Overall, this keynote demonstrates
how the transition from conventional doping to synergistic codoping establishes
a robust framework for designing next-generation metal oxide nanomaterials for sustainable
environmental and energy-related applications.