Li Tiejun, Niu Dian, Ji Lukang, Li Qian, Guan Bo, Wang Hanxiao, Ouyang Guanghui, Liu Minghua
Beijing National Laboratory of Molecular Sciences and CAS Key Laboratory of Colloid, Interface and Thermodynamics, Institute of Chemistry, Chinese Academy of Sciences, North First Street 2, Zhongguancun, Beijing, 100190, China.
University of Chinese Academy of Sciences, No.19(A) Yuquan Road, Beijing, 100049, China.
Nat Commun. 2025 Feb 17;16(1):1698. doi: 10.1038/s41467-025-57059-3.
Precise organization of organic molecules into homochiral double-helix remains a challenge due to the difficulty in controlling both self-assembly process and chirality transfer across length scales. Here, we report that a type of bisnaphthalene bisurea molecule could assemble into chirality-controlled nanoscale double-helices by a supramolecular rosette-intermediated hierarchical self-assembly mechanism. A solvent-mixing self-assembly protocol is adopted to direct bisnaphthalene bisurea cyclization into chiral discrete rosettes through cooperative intramolecular and intermolecular hydrogen bonds. Controlled hexagonal packing of rosettes at higher concentrations gives one-dimensional single-stranded nanofibers, which intertwine into well-defined double-helix nanostructures with preferred chirality that depends on the absolute configurations of bisnaphthalene bisurea. The hierarchical organization of bisnaphthalene bisurea molecules enables effective excitation energy delocalization within the double-helix, which contributes to near-unity energy transfer from double-helix to adsorbed acceptor dyes even in donor/acceptor ratios over 1000, leading to bright circularly polarized luminescence from the originally achiral acceptor. The experimental and theoretical simulation results not only provide a hierarchical strategy to fabricate homochiral double-helix but also bring insights in understanding the high-efficiency light-harvesting process in photosystem II.
由于难以同时控制自组装过程和跨长度尺度的手性转移,将有机分子精确组织成同手性双螺旋仍然是一项挑战。在此,我们报道了一种双萘双脲分子可以通过超分子玫瑰花结介导的分级自组装机制组装成手性可控的纳米级双螺旋。采用溶剂混合自组装方案,通过分子内和分子间的协同氢键作用,将双萘双脲环化引导为手性离散玫瑰花结。在较高浓度下,玫瑰花结的可控六方堆积形成一维单链纳米纤维,这些纳米纤维缠绕成具有特定手性的明确双螺旋纳米结构,该手性取决于双萘双脲的绝对构型。双萘双脲分子的分级组织能够在双螺旋内实现有效的激发能离域,即使在供体/受体比率超过1000的情况下,也有助于从双螺旋到吸附的受体染料的近乎完全的能量转移,从而使原本无手性的受体产生明亮的圆偏振发光。实验和理论模拟结果不仅提供了一种制备同手性双螺旋的分级策略,还为理解光系统II中的高效光捕获过程提供了见解。