耗散系统
耗散颗粒动力学模拟
机械能
化学
聚电解质
分区(防火)
工作(物理)
纳米技术
人口
化学物理
软质材料
能量转换
小泡
化学能
能量(信号处理)
电势能
机械系统
微型反应器
消散
动力控制
动能
作者
Francesco Vicentini,Aina Rebasa-Vallverdu,Martina Conti,Simone Dal Zilio,Aharon Steffè,Wuge H. Briscoe,Pierangelo Gobbo
摘要
Dissipative self-assembly, which relies on continuous energy input to form and sustain functional structures, underpins the adaptive behaviors of biological systems and is essential for creating synthetic materials with life-like properties. While chemical, thermal, photonic, or electrical energy sources have been used for dissipative self-assembly of nanostructures, this work pioneers mechanical energy as a novel driver to create dissipative polyelectrolyte micrometrical vesicles, with a half-life of ca. 2 days that exhibit cell-like properties such as selective molecular uptake and catalytic functionality. Our strategy works with different polyelectrolyte systems, including DNA and peptides, suggesting relevance to natural systems and the origins of life. Finally, we demonstrate that mechanical energy can also drive the evolution of distinct dissipative vesicle populations into a single, higher-order population with advanced compartmentalization and enhanced synthetic capabilities. Our work establishes mechanical energy as a key driver of dissipative self-assembly, with implications for life-like materials engineering, biotechnology, and microreactor design.
科研通智能强力驱动
Strongly Powered by AbleSci AI