Yuen Jonathan M, Diers James R, Alexy Eric J, Roy Arpita, Mandal Amit Kumar, Kang Hyun Suk, Niedzwiedzki Dariusz M, Kirmaier Christine, Lindsey Jonathan S, Bocian David F, Holten Dewey
Department of Chemistry , Washington University , St. Louis , Missouri 63130-4889 , United States.
Department of Chemistry , University of California , Riverside , California 92521-0403 , United States.
J Phys Chem A. 2018 Sep 13;122(36):7181-7201. doi: 10.1021/acs.jpca.8b06815. Epub 2018 Aug 28.
Panchromatic absorbers that have robust photophysical properties enable new designs for molecular-based light-harvesting systems. Herein, we report experimental and theoretical studies of the spectral, redox, and excited-state properties of a series of perylene-monoimide-ethyne-porphyrin arrays wherein the number of perylene-monoimide units is stepped from one to four. In the arrays, a profound shift of absorption intensity from the strong violet-blue (B and B ) bands of typical porphyrins into the green, red, and near-infrared (Q and Q ) regions stems from mixing of chromophore and tetrapyrrole molecular orbitals (MOs), which gives multiplets of MOs having electron density spread over the entire array. This reduces the extensive mixing between porphyrin excited-state configurations and the transition-dipole addition and subtraction that normally leads to intense B and weak Q bands. Reduced configurational mixing derives from moderate effects of the ethyne and perylene on the MO energies and a more substantial effect of electron-density delocalization to reduce the configuration-interaction energy. Quantitative oscillator-strength analysis shows that porphyrin intensity is also shifted into the perylene-like green-region absorption and that the ethyne linkers lend absorption intensity. The reduced porphyrin configurational mixing also endows the S state with bacteriochlorin-like properties, including a 1-5 ns lifetime.
具有稳健光物理性质的全色吸收剂为基于分子的光收集系统带来了新的设计。在此,我们报告了一系列苝单酰亚胺 - 乙炔 - 卟啉阵列的光谱、氧化还原和激发态性质的实验和理论研究,其中苝单酰亚胺单元的数量从一个逐步增加到四个。在这些阵列中,典型卟啉强烈的紫蓝色(B 和 B )带的吸收强度显著转移到绿色、红色和近红外(Q 和 Q )区域,这源于发色团和四吡咯分子轨道(MOs)的混合,从而产生了电子密度分布在整个阵列上的多个MOs。这减少了卟啉激发态构型之间广泛的混合以及通常导致强烈B带和微弱Q带的跃迁偶极的加减。构型混合的减少源于乙炔和苝对MO能量的适度影响以及电子密度离域对降低构型相互作用能的更显著影响。定量振子强度分析表明,卟啉强度也转移到类似苝的绿色区域吸收中,并且乙炔连接体赋予吸收强度。卟啉构型混合的减少还赋予S态类似细菌叶绿素的性质,包括1 - 5纳秒的寿命。