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Medium-dependent resonance energy transfer: A controlling role for three-center upconversion

机译:介质相关的共振能量转移:三中心上变频的控制作用

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Up-conversion (UC) generally refers to any nonlinear optical process that facilitates the conversion of low energy radiation into higher energy emission. Typically achieved in materials incorporating rare-earth ions, exploiting their rich density of available electronic state transitions, non-parametric UC systems are often placed in categories including excited state absorption, photon avalanche and energy transfer. The latter, energy transfer up-conversion achieves nonlinear excitation of chromophores as a consequence of non-radiative resonance energy transfer (RET) events, through coupling with neighboring sensitizer ions. Being susceptible to the local electromagnetic environment, the mechanism of RET is known to be influenced by surrounding matter, underscoring the importance of similar channels for media control within UC materials. By developing the principles of two-center UC, a fully quantized representation of local electronic structure and electrodynamics is extended through the introduction of a mediator species - a vicinal, non-absorbing chromophore. This theory underpins a new application of the medium-modified energy transfer theory to three-center UC. The present report then considers an alternative up-conversion mechanism in which pairs of identical donors transfer energy to the acceptor species, promoting two-photon excitation and shorter wavelength emission. The mechanism for this three-center system proves to be significantly influenced by a fourth, essentially passive chromophore. Investigations of the influence of this mediator, in improving or inhibiting RET, determine parameters that can be modified to improve the UC efficiency. The results provide insight into factors that might assist the optimization of laser active media, and the improvement of optical characteristics in designer materials.
机译:上转换(UC)通常是指有助于将低能辐射转换为高能发射的任何非线性光学过程。非参数UC系统通常在掺入稀土离子的材料中利用其丰富的可用电子态跃迁密度而实现,因此通常被归入包括激发态吸收,光子雪崩和能量转移在内的类别。后者,能量传递上转换通过与邻近的敏化剂离子偶联,实现了发色团的​​非线性激发,这是非辐射共振能量传递(RET)事件的结果。 RET的机理易受当地电磁环境的影响,受周围​​物质的影响,从而强调了在UC材料中使用类似通道进行介质控制的重要性。通过发展两中心UC的原理,通过引入介体物种-相邻的非吸收性生色团扩展了局部电子结构和电动力学的完全量化表示。该理论为中等修正能量转移理论在三中心UC的新应用奠定了基础。然后本报告考虑了另一种上转换机制,其中成对的相同供体将能量转移到受体物种,促进了双光子激发和较短的波长发射。事实证明,此第四中心的机理受第四种基本为被动的发色团的显着影响。通过研究这种介体在改善或抑制RET中的影响,可以确定可修改的参数以提高UC效率。结果提供了有助于优化激光活性介质和改善设计器材料光学特性的因素的见解。

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