Jiang Naisheng, Chen Jianxia, Yu Tianyi, Chao Albert, Kang Liying, Wu Ying, Niu Kangmin, Li Ruipeng, Fukuto Masafumi, Zhang Donghui
Department of Chemistry and Macromolecular Studies Group, Louisiana State University, Baton Rouge, Louisiana 70803, United States.
School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China.
Macromolecules. 2020 Sep 8;53(17):7601-7612. doi: 10.1021/acs.macromol.0c01205. Epub 2020 Aug 25.
We investigated the effect of cyclic chain topology on the molecular ordering and thermal stability of comb-shaped polypeptoid thin films on silicon (Si) substrates. Cyclic and linear poly(-decylglycine) (PNDG) bearing long -decyl side chains were synthesized by ring-opening polymerization of -decylglycine-derived -carboxyanhydrides. When the spin-coated thin films were subjected to thermal annealing at temperatures above the melting temperature ( > ), the cyclic PNDG films exhibited significantly enhanced stability against melt-induced dewetting than the linear counterparts (-PNDG). When recrystallized at temperatures below the crystallization temperature ( < ), the homogeneous -PNDG films exhibit enhanced crystalline ordering relative to the macroscopically dewetted -PNDG films. Both cyclic and linear PNDG molecules adopt -amide conformations in the crystalline film, which transition into -amide conformations upon melting. A top-down solvent leaching treatment of both /-PNDG films revealed the formation of an irreversibly physisorbed monolayer with similar thickness (ca. 3 nm) on the Si substrate. The physisorbed monolayers are more disordered relative to the respective thicker crystalline films for both cyclic and linear PNDGs. Upon heating above , the adsorbed -PNDG chains adopt -amide backbone conformation identical with the free -PNDG molecules in the molten film. By contrast, the backbone conformations of -PNDG chains in the adsorbed layers are notably different from those of the free chains in the molten film. We postulate that the conformational disparity between the chains in the physically adsorbed layers versus the free chains in the molten film is an important factor to account for the difference in the thermal stability of PNDG thin films. These findings highlight the use of cyclic chain topology to suppress the melt-induced dewetting in polymer thin films.
我们研究了环状链拓扑结构对硅(Si)衬底上梳状聚肽薄膜的分子有序性和热稳定性的影响。通过癸基甘氨酸衍生的α-羧基酸酐的开环聚合反应,合成了带有长癸基侧链的环状和线性聚(癸基甘氨酸)(PNDG)。当旋涂薄膜在高于熔点温度(> )的条件下进行热退火时,环状PNDG薄膜相对于线性对应物(-PNDG)表现出显著增强的抗熔体诱导去湿稳定性。当在低于结晶温度(< )的温度下重结晶时,均匀的-PNDG薄膜相对于宏观去湿的-PNDG薄膜表现出增强的结晶有序性。环状和线性PNDG分子在结晶薄膜中均采用β-酰胺构象,在熔化时转变为α-酰胺构象。对/-PNDG薄膜进行自上而下的溶剂浸出处理后发现,在Si衬底上形成了厚度相似(约3 nm)的不可逆物理吸附单层。相对于环状和线性PNDG各自较厚的结晶薄膜,物理吸附单层的无序程度更高。在加热至 以上时,吸附的-PNDG链采用与熔融薄膜中游离-PNDG分子相同的α-酰胺主链构象。相比之下,吸附层中-PNDG链的主链构象与熔融薄膜中游离链的主链构象明显不同。我们推测,物理吸附层中的链与熔融薄膜中游离链之间的构象差异是解释PNDG薄膜热稳定性差异的一个重要因素。这些发现突出了环状链拓扑结构在抑制聚合物薄膜中熔体诱导去湿方面的应用。