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双相分离在受限系统中的应用:用于细胞编码和图案化的单分散异质嵌段共聚物膜。

Dual-Phase Separation in a Semiconfined System: Monodispersed Heterogeneous Block-Copolymer Membranes for Cell Encoding and Patterning.

机构信息

Beijing National Laboratory for Molecular Science, Institute of Chemistry, Chinese Academy of Sciences, North First Street 2, Zhongguancun, Beijing, 100190, China.

School of Chemistry and Chemical Engineering, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Adv Mater. 2017 May;29(19). doi: 10.1002/adma.201605932. Epub 2017 Mar 15.

Abstract

Block copolymers (BCPs) have the capacity to self-assemble into a myriad of well-defined aggregate structures, offering great promise for the construction of drug delivery, photolithographic templates, and complex nanoscale assemblies. A uniqueness of these materials is their propensity to become kinetically frozen in non-equilibrium states, implying that the process of self-assembly can be utilized to remodel the resulting structures. Here, a new semiconfined system for processing the BCP self-assembly is constructed, in which an unusual dual-phase separation occurs, including nonsolvent-induced microphase separation and osmotically driven macrophase separation, ultimately yielding heterogeneous BCP membranes. These membranes with cellular dimensions show unique anisotropy that can be used for cell encoding and patterning, which are highly relevant to biology and medicine. This processing method not only provides new levels of tailorability to the structures and encapsulated contents of BCP assemblies, but can also be generalized to other block polymers, particularly those with attractive electronic and/or optical properties.

摘要

嵌段共聚物 (BCPs) 具有自组装成多种定义明确的聚集结构的能力,为药物输送、光刻模板和复杂纳米级组装体的构建提供了巨大的前景。这些材料的独特之处在于它们倾向于在非平衡状态下被动力学冻结,这意味着自组装过程可以被用来重塑所得结构。在这里,构建了一种新的用于处理 BCP 自组装的半限制体系,其中发生了一种不寻常的双相分离,包括非溶剂诱导的微相分离和渗透压驱动的大相分离,最终得到了具有细胞尺寸的异质 BCP 膜。这些具有细胞尺寸的膜显示出独特的各向异性,可用于细胞编码和图案化,这与生物学和医学密切相关。这种加工方法不仅为 BCP 组装体的结构和封装内容提供了新的可定制性水平,而且还可以推广到其他嵌段聚合物,特别是那些具有吸引人的电子和/或光学性质的聚合物。

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