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聚合物共混物导向的向介孔无机碗和纳米片的各向异性自组装。

Polymer blend directed anisotropic self-assembly toward mesoporous inorganic bowls and nanosheets.

作者信息

Kim Seongseop, Hwang Jongkook, Lee Jisung, Lee Jinwoo

机构信息

Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Daejeon 34141, Republic of Korea.

Department of Chemical Engineering, Ajou University, Worldcupro 206, Suwon 16499, Republic of Korea.

出版信息

Sci Adv. 2020 Aug 12;6(33):eabb3814. doi: 10.1126/sciadv.abb3814. eCollection 2020 Aug.

Abstract

Anisotropic mesoporous inorganic materials have attracted great interest due to their unique and intriguing properties, yet their controllable synthesis still remains a great challenge. Here, we develop a simple synthesis approach toward mesoporous inorganic bowls and two-dimensional (2D) nanosheets by combining block copolymer (BCP)-directed self-assembly with asymmetric phase migration in ternary-phase blends. The homogeneous blend solution spontaneously self-assembles to anisotropically stacked hybrids as the solvent evaporates. Two minor phases-BCP/inorganic precursor and homopolystyrene (hPS)-form closely stacked, Janus domains that are dispersed/confined in the major homopoly(methyl methacrylate) (hPMMA) matrix. hPS phases are partially covered by BCP-rich phases, where ordered mesostructures develop. With increasing the relative amount of hPS, the anisotropic shape evolves from bowls to 2D nanosheets. Benefiting from the unique bowl-like morphology, the resulting transition metal oxides show promise as high-performance anodes in potassium-ion batteries.

摘要

各向异性介孔无机材料因其独特且引人入胜的性质而备受关注,但其可控合成仍然是一个巨大的挑战。在此,我们通过将嵌段共聚物(BCP)导向的自组装与三元共混物中的不对称相迁移相结合,开发了一种简单的合成方法来制备介孔无机碗状物和二维(2D)纳米片。随着溶剂蒸发,均匀的共混溶液自发地自组装成各向异性堆叠的杂化物。两个次要相——BCP/无机前驱体和均聚苯乙烯(hPS)——形成紧密堆叠的雅努斯域,它们分散/限制在主要的均聚(甲基丙烯酸甲酯)(hPMMA)基质中。hPS相部分被富含BCP的相覆盖,有序的介观结构在该相中形成。随着hPS相对量的增加,各向异性形状从碗状物演变为二维纳米片。得益于独特的碗状形态,所得的过渡金属氧化物有望成为钾离子电池中的高性能阳极。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac2b/7423385/b80cb5f3d73f/abb3814-F1.jpg

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