Mandal Pubali, Manna Jhimli S, Das Debmallya, Maiti Ramaprasad, Mitra Manoj K, Chakravorty Dipankar
School of Materials Science & Nanotechnology, Jadavpur University Kolkata 700032 India
Department of Electronics & Electrical Communication Engineering, Indian Institute of Technology Kharagpur 721302 India.
RSC Adv. 2018 Jul 24;8(47):26440-26447. doi: 10.1039/c8ra04612c.
Self-assembly of chlorophyll-a (Chl-a) molecules within a protein environment serves as the key factor behind controlled and efficient light energy harvesting in natural photosystems. Long-range ordering among supramolecular structures in terms of spin-orbit coupling and edge effect helps in untrapping of excitons in the disordered energy landscape. Mimicking the photosynthetic machinery would give a new paradigm for organic photovoltaic material design where a large amount of disorder exists. In this paper, we report the experimental evidence of room temperature magnetic domain wall formation and edge effect along with spin flop canting in self-assembled Chl-a within hydrogel matrix SQUID magnetometry. This was further correlated with intermolecular coupling and exciton delocalization through specific arrangements of self-assembly as evident from NMR spectral and photophysical characteristics. The data cumulatively suggest electronic backscattering protection which is also substantiated by the ferroelectric behavior coming from coexisting symmetry lowering. Here the polarization evolves through primary distribution of π electronic density along with a photoresponsive IV loop, similar to the photoprotection of photosynthesis. This work thus proposes a promising design principle for room temperature Chl-a based biomimetic systems efficient in photoharnessing.
叶绿素-a(Chl-a)分子在蛋白质环境中的自组装是自然光合系统中可控且高效的光能捕获背后的关键因素。超分子结构之间在自旋轨道耦合和边缘效应方面的长程有序有助于在无序的能量景观中激子的解陷。模仿光合机制将为存在大量无序的有机光伏材料设计提供一种新范式。在本文中,我们报告了在水凝胶基质中自组装的Chl-a内室温磁畴壁形成、边缘效应以及自旋翻转倾斜的实验证据 超导量子干涉仪磁力测量法。这进一步与分子间耦合以及通过自组装的特定排列实现的激子离域相关,这从核磁共振光谱和光物理特性中很明显。这些数据累积表明电子背散射保护,这也由共存对称性降低产生的铁电行为所证实。在这里,极化通过π电子密度的初级分布以及光响应IV曲线演化,类似于光合作用的光保护。因此,这项工作为基于室温Chl-a的高效光捕获仿生系统提出了一种有前景的设计原则。