论文标题
在打结的块共聚物环的热性能上
On the thermal properties of knotted block copolymer rings
论文作者
论文摘要
使用Wang-Landau MC算法在一个简单的立方晶格上研究了包含两种单体$ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a $ a和b $ $ b $ $ b $ $ b $ $ b $ $ b $ b $ b $的热性能。这些结的相图比均聚物形成的结(包括亚稳态的存在)更复杂。考虑了两种不同的设置:i)离子溶液中的充电块共聚物和ii)中性共聚物,上面的$ a $单体以及theta点以下的$ b $单体。提供了对特定热容量图中观察到的峰的精确解释。鉴于医学中可能的应用和智能材料的构建,还可以通过更改其单体构型和拓扑来调整共聚物环的行为。我们发现,最稳定的紧凑型状态是由带电的共聚物形成的,其中很短的$ a $ sumers的短段由带有$ b $ bug单体的短段交替使用。在这样的结中,从紧凑型到扩展状态的过渡非常快,导致特定的热容量狭窄且高峰值,在非常高的温度下。拓扑的效果可以调整打结的聚合物环的回旋半径,并增加或降低系统的相变或重排发生的温度。虽然我们观察到拓扑中拓扑的影响逐渐消失,但我们的模拟捕获了该规则的一些例外。
The thermal properties of coarse grained knotted polymers containing two kinds of monomers $A$ and $B$ fluctuating in a solution are investigated on a simple cubic lattice using the Wang-Landau MC algorithm. These knots have a more complex phase diagram than knots formed by homopolymers, including the possible presence of metastable states. Two different setups are considered: i) charged block copolymers in a ion solution and ii) neutral copolymers with the $A$ monomers above and the $B$ monomers below the theta point. A precise interpretation of the peaks observed in the plots of the specific heat capacity is provided. In view of possible applications in medicine and the construction of intelligent materials, it is also shown that the behavior of copolymer rings can be tuned by changing both their monomer configuration and topology. We find that the most stable compact states are formed by charged copolymers in which very short segments with $A$ monomers are alternated by short segments with $B$ monomers. In such knots the transition from the compact to the expanded state is very fast, leading to a narrow and high peak in the specific heat capacity which appears at very high temperatures. The effects of topology allow to tune the radius of gyration of the knotted polymer ring and to increase or decrease the temperatures at which the observed phase transitions or rearrangements of the system occur. While we observe a general fading out of the influence of topology in longer polymers, our simulations have captured a few exceptions to this rule.