Nonlinearities in energy harvesting media

被引:3
作者
Andrews, DL [1 ]
Jenkins, RD [1 ]
机构
[1] Univ E Anglia, Sch Chem Sci, Norwich NR4 7TJ, Norfolk, England
来源
COMPLEX MEDIUMS II: BEYOND LINEAR ISOTROPIC DIELECTRICS | 2001年 / 4467卷
关键词
nonlinear optics; energy harvesting; resonance energy transfer; multiphoton; lasers;
D O I
10.1117/12.432943
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
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.
引用
收藏
页码:297 / 306
页数:10
相关论文
共 48 条
[41]   Exciton localization hierarchy and directed energy transfer in conjugated linear aromatic chains and dendrimeric supermolecules [J].
Swallen, SF ;
Shi, ZY ;
Tan, WH ;
Xu, ZF ;
Moore, JS ;
Kopelman, R .
JOURNAL OF LUMINESCENCE, 1998, 76-7 :193-196
[42]   Intramolecular singlet-singlet and triplet-triplet energy transfer in adamantyl-linked trichromophores [J].
Tan, Z ;
Kote, R ;
Samaniego, WN ;
Weininger, SJ ;
McGimpsey, WG .
JOURNAL OF PHYSICAL CHEMISTRY A, 1999, 103 (38) :7612-7620
[43]   Localized electronic excitations in phenylacetylene dendrimers [J].
Tretiak, S ;
Chernyak, V ;
Mukamel, S .
JOURNAL OF PHYSICAL CHEMISTRY B, 1998, 102 (18) :3310-3315
[44]   CALCULATION OF THE DISTRIBUTION OF DONOR-ACCEPTOR DISTANCES IN FLEXIBLE BICHROMOPHORIC MOLECULES - APPLICATION TO INTRAMOLECULAR TRANSFER OF EXCITATION-ENERGY [J].
VALEUR, B ;
MUGNIER, J ;
POUGET, J ;
BOURSON, J ;
SANTI, F .
JOURNAL OF PHYSICAL CHEMISTRY, 1989, 93 (16) :6073-6079
[45]  
Van der Meer BW., 1994, RESONANCE ENERGY TRA
[46]   Energy-transfer modeling for the rational design of multiporphyrin light-harvesting arrays [J].
Van Patten, PG ;
Shreve, AP ;
Lindsey, JS ;
Donohoe, RJ .
JOURNAL OF PHYSICAL CHEMISTRY B, 1998, 102 (21) :4209-4216
[47]  
VANGRONDELLE R, 1999, RESONANCE ENERGY TRA, P366
[48]   INTERMOLECULAR NONRADIATIVE ENERGY-TRANSFER - EFFECT OF SPACER LENGTH CARRYING DONOR AND ACCEPTOR FLUOROPHORES IN WATER-SOLUBLE COPOLYMERS OF POLY[N-(2-HYDROXYPROPYL)METHACRYLAMIDE] [J].
VYPRACHTICKY, D ;
POKORNA, V ;
MIKES, F .
MACROMOLECULAR CHEMISTRY AND PHYSICS, 1995, 196 (02) :659-668