Du Wei, Gao Feng, Cui Peng, Yu Zhiwu, Tong Wei, Wang Jihao, Ren Zhuang, Song Chuang, Xu Jiaying, Ma Haifeng, Dang Liyun, Zhang Di, Lu Qingyou, Jiang Jun, Wang Junfeng, Pi Li, Sheng Zhigao, Lu Qingyi
State Key Laboratory of Coordination Chemistry, School of Chemistry and Chemical Engineering, Collaborative Innovation Center of Advanced Microstructures, Nanjing National Laboratory of Microstructures, Nanjing University, 210023, Nanjing, P. R. China.
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, 211816, Nanjing, P. R. China.
Nat Commun. 2023 Jul 22;14(1):4426. doi: 10.1038/s41467-023-40001-w.
The reversible transformation of a nanohelix is one of the most exquisite and important phenomena in nature. However, nanomaterials usually fail to twist into helical crystals. Considering the irreversibility of the previously studied twisting forces, the reverse process (untwisting) is more difficult to achieve, let alone the retwisting of the untwisted crystalline nanohelices. Herein, we report a new reciprocal effect between molecular geometry and crystal structure which triggers a twisting-untwisting-retwisting cycle for tri-cobalt salicylate hydroxide hexahydrate. The twisting force stems from competition between the condensation reaction and stacking process, different from the previously reported twisting mechanisms. The resulting distinct nanohelices give rise to unusual structure elasticity, as reflected in the reversible change of crystal lattice parameters and the mutual transformation between the nanowires and nanohelices. This study proposes a fresh concept for designing reversible processes and brings a new perspective in crystallography.
纳米螺旋的可逆转变是自然界中最精妙且重要的现象之一。然而,纳米材料通常难以扭曲成螺旋晶体。鉴于先前研究的扭曲力具有不可逆性,逆向过程(解旋)更难实现,更不用说将已解旋的晶体纳米螺旋重新扭曲了。在此,我们报道了分子几何结构与晶体结构之间一种新的相互作用,它引发了六水合氢氧化三钴水杨酸盐的扭曲 - 解旋 - 再扭曲循环。这种扭曲力源于缩合反应与堆积过程之间的竞争,与先前报道的扭曲机制不同。由此产生的独特纳米螺旋具有异常的结构弹性,这体现在晶格参数的可逆变化以及纳米线与纳米螺旋之间的相互转变上。本研究为设计可逆过程提出了一个全新的概念,并为晶体学带来了新的视角。