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Nonlinearities in Energy Harvesting Media

机译:能量收集介质中的非线性

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Both in natural photosynthetic systems and also their molecularly engineered mimics, energy is generally transferred to the sites of its chemical storage from other sites of primary optical excitation. This migration process generally entails a number of steps, frequently involving intermediary chromophore units, with each step characterised by high efficiency and rapidity. Energy thereby accrues at reaction centres where its chemical storage occurs. At high levels of irradiation, energy harvesting materials can exhibit novel forms of optical nonlinearity. Such behaviour is associated with the direct pooling of excitation energy, enabling secondary acceptors to undergo transitions to states whose energy equals that of two or more input photons, subject to decay losses. Observations of this kind have now been made on a variety of materials, ranging from photoactive dyes, through fullerene derivatives, to lanthanide doped crystals. Recently developed theory has established the underlying principles and links between the modes of operation of these systems. Key factors include the chromophore layout and geometry, electronic structure and optical selection rules. Mesoscopic symmetry, especially in photosynthetic pigment arrays and also in their dendrimeric mimics, is here linked to the transient establishment of excitons. The involvement of excitons in energy harvesting is nonetheless substantially compromised by local disorder. The interplay of these factors in photoactive materials design is discussed in the context of new materials for operation with intense laser light.
机译:无论是在自然光合作用系统中还是在分子工程模拟中,能量通常都从其他一次光激发位置转移到其化学存储位置。该迁移过程通常需要多个步骤,通常涉及中间生色团单元,每个步骤都具有高效和快速的特征。因此,能量聚集在发生化学存储的反应中心。在高水平的辐射下,能量收集材料会表现出新型的光学非线性形式。这种行为与激发能量的直接汇集有关,使次级受主经历跃迁到其能量等于两个或多个输入光子能量的状态,并受到衰减损耗的影响。现在已经在各种材料上进行了这种观察,从光敏染料到富勒烯衍生物,再到镧系元素掺杂的晶体。最近发展的理论已经建立了这些系统的操作模式之间的基本原理和联系。关键因素包括生色团的布局和几何形状,电子结构和光学选择规则。介观对称性,特别是在光合色素阵列及其树枝状模拟物中,与瞬态激子的建立有关。然而,激子在能量收集中的参与在很大程度上受到局部障碍的损害。这些因素在光敏材料设计中的相互作用将在用于强激光操作的新材料的背景下进行讨论。

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