Afifa Yousuf, Asad Ullah, Syeda Qirat Ul Hussain, Muhammad Arif Ali, Muhammad Arshad
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The introduction of electron-donor groups considerably boosts absorption, particularly in IUB-P-06, with highest λ<sub>max</sub> and oscillator strength (f<sub>o</sub>) signifying excellent light absorption capabilities. The calculated light harvesting efficiency (LHE) correlates strongly with f<sub>o</sub> values, IUB-N-01 to IUB-N-05 exhibiting higher LHE than the unsubstituted IUB. Additionally, lower radiative lifetimes (τ) for the modified compounds indicate faster decay, useful for applications in photodynamic therapy and fluorescence imaging. Lower transition energy (ΔE) and higher f<sub>o</sub> values contributed to greater first hyperpolarizability (β<sub>o</sub>). IUB-P-06, with two -NH<sub>2</sub> donor groups, shows the lowest ΔE (2.81 eV) and a correspondingly high β<sub>o</sub> (60218.89 a.u.). Whereas IUB-A-02 exhibits the highest β<sub>o</sub> (68907.84 a.u.) due to its large dipole moment change (Δμ = -6.37 D). Among N-substituted compounds, IUB-N-01 exhibits the highest charge density. IUB-P-06 has the highest charge density and electron-hole separation due to electron donor/acceptor groups, indicating a higher degree of internal atomic localization. This enhanced charge separation further confirms the superior performance of these compounds in NLO applications. In conclusion, this comprehensive analysis spanning ESP, TD-DFT, TLM, LHE, and TDM demonstrates that the studied naphthyridine derivatives possess promising NLO properties and exhibit strong potential for use in optoelectronics, photovoltaics, photodynamic therapy, and other advanced optical technologies.</p>","PeriodicalId":94213,"journal":{"name":"Spectrochimica acta. 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N-substituted compounds (IUB-N series) generally show lower β<sub>tot</sub> values, while compounds with electron donor/acceptor groups (IUB-P series) demonstrate a broader range, with IUB-A-02 achieving the highest β<sub>tot</sub> value of 16,362 a.u. due to the presence of two -NH<sub>2</sub> groups. TD-DFT analysis confirms key electronic transitions, mostly from HOMO to LUMO, with absorption wavelengths (λmax) ranging from 349.596 to 440.692 nm for the IUB-P series. The introduction of electron-donor groups considerably boosts absorption, particularly in IUB-P-06, with highest λ<sub>max</sub> and oscillator strength (f<sub>o</sub>) signifying excellent light absorption capabilities. The calculated light harvesting efficiency (LHE) correlates strongly with f<sub>o</sub> values, IUB-N-01 to IUB-N-05 exhibiting higher LHE than the unsubstituted IUB. Additionally, lower radiative lifetimes (τ) for the modified compounds indicate faster decay, useful for applications in photodynamic therapy and fluorescence imaging. Lower transition energy (ΔE) and higher f<sub>o</sub> values contributed to greater first hyperpolarizability (β<sub>o</sub>). IUB-P-06, with two -NH<sub>2</sub> donor groups, shows the lowest ΔE (2.81 eV) and a correspondingly high β<sub>o</sub> (60218.89 a.u.). Whereas IUB-A-02 exhibits the highest β<sub>o</sub> (68907.84 a.u.) due to its large dipole moment change (Δμ = -6.37 D). Among N-substituted compounds, IUB-N-01 exhibits the highest charge density. IUB-P-06 has the highest charge density and electron-hole separation due to electron donor/acceptor groups, indicating a higher degree of internal atomic localization. This enhanced charge separation further confirms the superior performance of these compounds in NLO applications. 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引用次数: 0
摘要
本文利用密度泛函理论(DFT)研究了新设计的萘啶衍生物的非线性光学和光物理性质。第一超极化率(βtot)是NLO活性的一个关键指标,根据取代基的不同而有显著变化。n -取代化合物(IUB-N系列)的βtot值一般较低,而具有电子供体/受体基团的化合物(IUB-P系列)的βtot值范围更广,其中IUB-A-02由于存在两个-NH2基团,βtot值最高,为16,362 a.u.。TD-DFT分析证实了IUB-P系列的关键电子跃迁,主要是从HOMO到LUMO,吸收波长(λmax)在349.596 ~ 440.692 nm之间。引入电子给体基团大大提高了吸收,特别是在IUB-P-06中,具有最高的λmax和振荡器强度(fo),表明优异的光吸收能力。结果表明,IUB- n -01和IUB- n -05的光收集效率高于未取代的IUB。此外,改性化合物的较低辐射寿命(τ)表明更快的衰变,有助于光动力治疗和荧光成像的应用。较低的跃迁能(ΔE)和较高的fo值有助于较高的第一超极化率(βo)。具有两个-NH2供体基团的IUB-P-06具有最低的ΔE (2.81 eV)和相应的高βo (60218.89 a.u)。而IUB-A-02由于偶极矩变化大(Δμ = -6.37 D), βo值最高(68907.84 a.u),在n取代化合物中,IUB-N-01的电荷密度最高。IUB-P-06具有最高的电荷密度和电子空穴分离,这是由于电子给体/受体基团的存在,表明其内部原子局域化程度较高。这种增强的电荷分离进一步证实了这些化合物在NLO应用中的优越性能。总之,这项涵盖ESP、TD-DFT、TLM、LHE和TDM的综合分析表明,所研究的萘啶衍生物具有很好的NLO特性,在光电子、光伏、光动力治疗和其他先进光学技术中具有很强的应用潜力。
Spectroscopic studies and Non-Linear optical response through C/N replacement and modulation of electron Donor/Acceptor Units on naphthyridine derivatives.
This study explores the nonlinear optical (NLO) and photophysical properties of newly designed naphthyridine derivatives by density functional theory (DFT). The first hyperpolarizability (βtot), a key indicator of NLO activity, varies significantly depending on the substituent groups. N-substituted compounds (IUB-N series) generally show lower βtot values, while compounds with electron donor/acceptor groups (IUB-P series) demonstrate a broader range, with IUB-A-02 achieving the highest βtot value of 16,362 a.u. due to the presence of two -NH2 groups. TD-DFT analysis confirms key electronic transitions, mostly from HOMO to LUMO, with absorption wavelengths (λmax) ranging from 349.596 to 440.692 nm for the IUB-P series. The introduction of electron-donor groups considerably boosts absorption, particularly in IUB-P-06, with highest λmax and oscillator strength (fo) signifying excellent light absorption capabilities. The calculated light harvesting efficiency (LHE) correlates strongly with fo values, IUB-N-01 to IUB-N-05 exhibiting higher LHE than the unsubstituted IUB. Additionally, lower radiative lifetimes (τ) for the modified compounds indicate faster decay, useful for applications in photodynamic therapy and fluorescence imaging. Lower transition energy (ΔE) and higher fo values contributed to greater first hyperpolarizability (βo). IUB-P-06, with two -NH2 donor groups, shows the lowest ΔE (2.81 eV) and a correspondingly high βo (60218.89 a.u.). Whereas IUB-A-02 exhibits the highest βo (68907.84 a.u.) due to its large dipole moment change (Δμ = -6.37 D). Among N-substituted compounds, IUB-N-01 exhibits the highest charge density. IUB-P-06 has the highest charge density and electron-hole separation due to electron donor/acceptor groups, indicating a higher degree of internal atomic localization. This enhanced charge separation further confirms the superior performance of these compounds in NLO applications. In conclusion, this comprehensive analysis spanning ESP, TD-DFT, TLM, LHE, and TDM demonstrates that the studied naphthyridine derivatives possess promising NLO properties and exhibit strong potential for use in optoelectronics, photovoltaics, photodynamic therapy, and other advanced optical technologies.