<p>The development of efficient and sustainable photocatalysts is vital for environmental remediation. Plant-derived flavonoids like quercetin show promise, but their tightly bound Frenkel excitons (<InlineEquation ID="IEq1"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="214_2025_3228_Article_IEq1.gif" Format="GIF" Height="14" Rendition="HTML" Resolution="72" Type="Linedraw" Width="61" /> </InlineMediaObject> <EquationSource Format="TEX">\(\sim 0.6 eV\)</EquationSource> <EquationSource Format="MATHML"><math> <mrow> <mo>∼</mo> <mn>0.6</mn> <mi>e</mi> <mi>V</mi> </mrow> </math></EquationSource> </InlineEquation> binding energy) hinder charge separation. In this study, we present a theoretical framework that demonstrates how electric field-induced Stark effects overcome this limitation in quercetin–Al–TiO<sub>2</sub> hybrid photocatalysts. Our quantum mechanical modeling and charge transfer kinetics reveal that field-induced exciton dissociation becomes efficient in the high-field regime (0.5–1.5 V/Å), representative of internal interfacial fields arising from Al-doping and oxygen vacancy gradients. While these magnitudes exceed externally applied device-scale fields, they are consistent with localized built-in fields in nanostructured hybrid systems. These fields (~0.6 V/Å) reduce exciton binding energies by &gt; 80%, achieving over 90% dissociation. Our findings further show that the anisotropic polarizability (α ≈ 62 Å<sup>3</sup>) and strong transition dipole moment (μ ≈ 6 D) of quercetin make it particularly responsive to field modulation, with built-in fields from Al-doping in TiO<sub>2</sub> proving sufficient to achieve these effects without external bias. Our unified Hamiltonian model identifies three field-dependent regimes: weak-field dipole alignment, intermediate-field exciton destabilization, and strong-field wavefunction delocalization, leading to ultrafast charge separation (&lt; 0.5 ns). These findings, supported by existing Stark spectroscopy data, establish quercetin-based hybrids as viable and sustainable alternatives to synthetic photocatalysts, offering quantitative design rules for large-scale environmental applications.</p>

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Stark-enhanced Frenkel exciton dissociation in plant-derived quercetin–Al–TiO2 hybrid photocatalysts for accelerated environmental remediation

  • Moses Udoisoh

摘要

The development of efficient and sustainable photocatalysts is vital for environmental remediation. Plant-derived flavonoids like quercetin show promise, but their tightly bound Frenkel excitons ( \(\sim 0.6 eV\) 0.6 e V binding energy) hinder charge separation. In this study, we present a theoretical framework that demonstrates how electric field-induced Stark effects overcome this limitation in quercetin–Al–TiO2 hybrid photocatalysts. Our quantum mechanical modeling and charge transfer kinetics reveal that field-induced exciton dissociation becomes efficient in the high-field regime (0.5–1.5 V/Å), representative of internal interfacial fields arising from Al-doping and oxygen vacancy gradients. While these magnitudes exceed externally applied device-scale fields, they are consistent with localized built-in fields in nanostructured hybrid systems. These fields (~0.6 V/Å) reduce exciton binding energies by > 80%, achieving over 90% dissociation. Our findings further show that the anisotropic polarizability (α ≈ 62 Å3) and strong transition dipole moment (μ ≈ 6 D) of quercetin make it particularly responsive to field modulation, with built-in fields from Al-doping in TiO2 proving sufficient to achieve these effects without external bias. Our unified Hamiltonian model identifies three field-dependent regimes: weak-field dipole alignment, intermediate-field exciton destabilization, and strong-field wavefunction delocalization, leading to ultrafast charge separation (< 0.5 ns). These findings, supported by existing Stark spectroscopy data, establish quercetin-based hybrids as viable and sustainable alternatives to synthetic photocatalysts, offering quantitative design rules for large-scale environmental applications.