Ryu Hanseul, Sung Jong-Chan, Kim Gangme, Xu Yan, Grubbs Robert H, Choi Tae-Lim
Department of Chemistry, Seoul National University, Seoul, 08826, Republic of Korea.
College of Chemistry and Molecular Engineering, Peking University, Beijing, 100871, China.
Angew Chem Int Ed Engl. 2022 Nov 7;61(45):e202210244. doi: 10.1002/anie.202210244. Epub 2022 Oct 7.
Cyclopolymerization is a powerful method for synthesizing polyacetylenes containing four- to seven-membered rings. However, the structure of the repeat unit only consists of mono-cycloalkene due to the single cyclization of diyne monomers. Herein, we demonstrate a novel cascade cyclopolymerization to synthesize polyacetylenes containing fused bicyclic rings from triyne monomers containing bulky dendrons via sequential cascade ring-closing metathesis. These dendrons provided solubility and stability to the rigid bicyclic polyacetylene backbone. In addition, we controlled the regioselectivity of the catalyst approach by altering its structure and synthesized polymers containing fused bicyclo[4,3,0] or [4,4,0] rings with high molecular weights of up to 120 kg mol . Interestingly, the resulting polymers showed narrower band gaps (down to 1.6 eV) than polymers with mono-cycloalkene repeat units due to the planarization of the conjugated segment resulting from the fused bicyclic structure.
环化聚合是合成含四至七元环聚乙炔的一种有效方法。然而,由于二炔单体的单环化作用,重复单元的结构仅由单环烯烃组成。在此,我们展示了一种新型的级联环化聚合反应,通过连续的级联闭环复分解反应,从含有庞大树枝状分子的三炔单体合成含稠合双环的聚乙炔。这些树枝状分子为刚性双环聚乙炔主链提供了溶解性和稳定性。此外,我们通过改变催化剂的结构来控制其进攻的区域选择性,并合成了含稠合双环[4,3,0]或[4,4,0]环、分子量高达120 kg·mol的高分子量聚合物。有趣的是,由于稠合双环结构导致共轭链段平面化,所得聚合物的带隙比具有单环烯烃重复单元的聚合物更窄(低至1.6 eV)。