序列(生物学)
聚合物
化学
单体
聚合
组合化学
纳米技术
固相合成
高分子
材料科学
有机化学
肽
生物化学
作者
Ruijiao Dong,Ruiyi Liu,Piers R. J. Gaffney,Marc Schaepertoens,Patrizia Marchetti,Christopher M. Williams,Rongjun Chen,Andrew G. Livingston
出处
期刊:Nature Chemistry
[Nature Portfolio]
日期:2018-11-26
卷期号:11 (2): 136-145
被引量:75
标识
DOI:10.1038/s41557-018-0169-6
摘要
Synthetic chemists have devoted tremendous effort towards the production of precision synthetic polymers with defined sequences and specific functions. However, the creation of a general technology that enables precise control over monomer sequence, with efficient isolation of the target polymers, is highly challenging. Here, we report a robust strategy for the production of sequence-defined synthetic polymers through a combination of liquid-phase synthesis and selective molecular sieving. The polymer is assembled in solution with real-time monitoring to ensure couplings proceed to completion, on a three-armed star-shaped macromolecule to maximize efficiency during the molecular sieving process. This approach is applied to the construction of sequence-defined polyethers, with side-arms at precisely defined locations that can undergo site-selective modification after polymerization. Using this versatile strategy, we have introduced structural and functional diversity into sequence-defined polyethers, unlocking their potential for real-life applications in nanotechnology, healthcare and information storage. The creation of a viable technology that enables precise control over the monomer sequence in synthetic polymers remains a significant challenge. High-purity sequence-defined polyethers with readily tailored side-chain functionalities have now been made through liquid-phase iterative synthesis combined with size-exclusion molecular sieving and real-time monitoring.
科研通智能强力驱动
Strongly Powered by AbleSci AI