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Insight into the defect-molecule interaction through the molecular-like photoluminescence of SiO2 nanoparticles

机译:通过SiO2纳米粒子的分子样光致发光探视缺陷分子相互作用

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摘要

Luminescence properties due to surface defects in SiO2 are the main keystone with particles that have nanoscale dimensions, thus motivating their investigation for many emission related applications in the last few decades. A critical issue is the role played by the atmosphere that, by quenching mechanisms, weakens both the efficiency and stability of the defects. A deep knowledge of these factors is mandatory in order to properly limit any detrimental effects and, ultimately, to offer new advantageous possibilities for their exploitation. Up to now, quenching effects have been interpreted as general defect conversion processes due to the difficulty in disentangling the emission kinetics by the action of the specific quenchers. To overcome this limit, we report a time-resolved investigation of the effects induced in specific controlled molecular environments (N-2, O-2, CO2 and H2O) on the exceptional molecular-like luminescence that is observed around 3.0-3.4 eV in SiO2 nanoparticles. A comparison with the effects under vacuum indicates changes of the luminescence intensity and lifetime that agree with two quenching mechanisms, static and dynamic. The peculiarity of the spectral features, together with a powerful investigation approach, makes this the system of choice to probe inside the dynamics of the molecule-defect interactions and to reveal promising characteristics for molecular-sensing purposes.
机译:由于SiO 2的表面缺陷导致的发光性质是具有纳米级尺寸的颗粒的主梯形,从而激励了在过去几十年中对许多排放相关应用的调查。一个关键问题是大气发挥的作用,通过淬火机制,削弱了缺陷的效率和稳定性。深切了解这些因素是强制性的,以便正确限制任何不利影响,最终为其开发提供新的有利可能性。到目前为止,由于难以通过特定猝灭剂的作用解除发射动力学的困难,已经解释为一般缺陷转换过程。为了克服这一限制,我们报告了在近3.0-3.4 eV中观察到的特殊分子样发光的特定受控分子环境(N-2,O-2,CO 2和H 2 O)中诱导的效果的时间分辨调查SiO2纳米粒子。与真空下效果的比较表明了与两个淬火机制,静态和动态相同的发光强度和寿命的变化。光谱特征的特点以及强大的调查方法,使得该系统在分子缺陷相互作用的动态内部探讨和揭示用于分子传感目的的有希望的特征。

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  • 来源
    《RSC Advances》 |2016年第95期|共6页
  • 作者单位

    Ural Fed Univ Inst Phys &

    Technol 19 Ul Mira Ekaterinburg 620002 Russia;

    Univ Palermo Phys &

    Chem Dept Via Archirafi 36 I-90123 Palermo Italy;

    Univ Palermo Phys &

    Chem Dept Via Archirafi 36 I-90123 Palermo Italy;

    Univ Palermo Phys &

    Chem Dept Via Archirafi 36 I-90123 Palermo Italy;

    Ural Fed Univ Inst Phys &

    Technol 19 Ul Mira Ekaterinburg 620002 Russia;

    Univ Palermo Phys &

    Chem Dept Via Archirafi 36 I-90123 Palermo Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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