Department of Chemistry, University of British Columbia, 2036 Main Mall, Vancouver, BC, V6T 1Z1, Canada.
Chemistry. 2013 Jun 17;19(25):8331-41. doi: 10.1002/chem.201203786. Epub 2013 Apr 23.
RuII complexes incorporating both amide-linked bithiophene donor ancillary ligands and laminate acceptor ligands; dipyrido[3,2-a:2',3'-c]phenazine (dppz), tetrapyrido[3,2-a:2',3'-c:3'',2''-h:2''',3'''-j]phenazine (tpphz), and 9,11,20,22-tetraazatetrapyrido[3,2-a:2',3'-c:3'',2''-l:2''',3''']-pentacene (tatpp) exhibit long-lived charge separated (CS) states, which have been analyzed using time-resolved transient absorption (TA), fluorescence, and electronic absorption spectroscopy in addition to ground state electrochemical and spectroelectrochemical measurements. These complexes possess two electronically relevant ³MLCT states related to electron occupation of MOs localized predominantly on the proximal "bpy-like" portion and central (or distal) "phenazine-like" portion of the acceptor ligand as well as energetically similar ³LC and ³ILCT states. The unusually long excited state lifetimes (τ up to 7 μs) observed in these complexes reflect an equilibration of the ³MLCTprox or ³MLCTdist states with additional triplet states, including a ³LC state and a ³ILCT state that formally localizes a hole on the bithiophene moiety and an electron on the laminate acceptor ligand. Coordination of a ZnII ion to the open coordination site of the laminate acceptor ligand is observed to significantly lower the energy of the ³MLCTdist state by decreasing the magnitude of the excited state dipole and resulting in much shorter excited state lifetimes. The presence of the bithiophene donor group is reported to substantially extend the lifetime of these Zn adducts via formation of a ³ILCT state that can equilibrate with the ³MLCTdist state. In tpphz complexes, ZnII coordination can reorder the energy of the ³MLCTprox and ³MLCTdist states such that there is a distinct switch from one state to the other. The net result is a series of complexes that are capable of forming CS states with electron-hole spatial separation of up to 14 Å and possess exceptionally long lifetimes by equilibration with other triplet states.
包含酰胺连接的联噻吩给体辅助配体和层状受体配体的 RuII 配合物;二吡啶并[3,2-a:2',3'-c]吩嗪(dppz)、四吡啶并[3,2-a:2',3'-c:3'',2''-h:2''',3'''-j]吩嗪(tpphz)和 9,11,20,22-四氮杂四吡啶并[3,2-a:2',3'-c:3'',2''-l:2''',3''']-五并苯(tatpp)表现出长寿命的电荷分离(CS)态,除了基态电化学和光谱电化学测量外,还使用时间分辨瞬态吸收(TA)、荧光和电子吸收光谱对其进行了分析。这些配合物具有两个与电子占据 MO 相关的电子相关的 ³MLCT 态,这些 MO 主要定位于受体配体的近端“bpy 样”部分和中心(或远端)“吩嗪样”部分,以及能量相似的 ³LC 和 ³ILCT 态。在这些配合物中观察到的异常长激发态寿命(τ高达 7 μs)反映了 ³MLCTprox 或 ³MLCTdist 态与额外三重态之间的平衡,包括 ³LC 态和 ³ILCT 态,该态在形式上将空穴定位于联噻吩部分上,并将电子定位于层状受体配体上。观察到 ZnII 离子与层状受体配体的开放配位位配位会显著降低 ³MLCTdist 态的能量,从而减小激发态偶极矩,并导致激发态寿命大大缩短。据报道,联噻吩供体基团的存在通过形成可以与 ³MLCTdist 态平衡的 ³ILCT 态,大大延长了这些 Zn 加合物的寿命。在 tpphz 配合物中,ZnII 配位可以重新排列 ³MLCTprox 和 ³MLCTdist 态的能量,使得从一个态到另一个态的明显转变。最终结果是一系列配合物,它们能够形成具有高达 14 Å 的电子-空穴空间分离的 CS 态,并通过与其他三重态的平衡而具有异常长的寿命。