Monomicellar Assembly for Hierarchically Meso‑Macroporous Spheres

ABSTRACT Hierarchically meso‐macroporous materials are attractive for catalysis, separations, and energy conversion, yet controlling multiple pore length scales within a single soft‐template system remains challenging. Here, we develop a molecularly guided monomicellar assembly strategy that couples amine‐mediated interfacial polymerization with molecular engineering of polyphenol precursors to construct hierarchically meso‐macroporous spheres. We show that precursor‐micelle interactions and solvent‐regulated interfacial dynamics govern the transition from individual micelle templating to intermicellar collision and fusion, allowing micelle‐derived mesopores to be preserved while larger macroporous domains are generated. Tuning the interactions enables programmable pore evolution from surface‐mesoporous and multichambered mesoporous architectures to hierarchically meso‐macroporous spheres. The resulting nitrogen‐doped carbon spheres possess uniform sizes (∼355 nm), high surface areas (379.2 m 2 g −1 ), and well‐defined hierarchical pore networks (∼36, ∼62, and ∼121 nm). As metal‐free electrocatalysts, they exhibit enhanced oxygen reduction activity. Our findings establish a general design principle for extending monomicellar assembly from mesoporous materials to hierarchical porous architectures and provide new opportunities for the rational synthesis of multi‐scale porous materials.

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Publication Details

Journal
Angewandte Chemie
Published
2026-09-15
DOI
https://doi.org/10.1002/ange.8317130
Primary Topic
Mesoporous Materials and Catalysis
Type
article
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Monomicellar Assembly for Hierarchically Meso‑Macroporous Spheres

Xinghuan Liu, Xin Jia, Wei Li, Youpeng Xiong et al.
Angewandte Chemie
Mesoporous Materials and Catalysis
article

Monomicellar Assembly for Hierarchically Meso‑Macroporous Spheres

Xinghuan Liu, Xin Jia, Wei Li, Youpeng Xiong, Chao Huang, Zhiqing Liu, Yu Wang, Long Chen
article en

Abstract

ABSTRACT Hierarchically meso‐macroporous materials are attractive for catalysis, separations, and energy conversion, yet controlling multiple pore length scales within a single soft‐template system remains challenging. Here, we develop a molecularly guided monomicellar assembly strategy that couples amine‐mediated interfacial polymerization with molecular engineering of polyphenol precursors to construct hierarchically meso‐macroporous spheres. We show that precursor‐micelle interactions and solvent‐regulated interfacial dynamics govern the transition from individual micelle templating to intermicellar collision and fusion, allowing micelle‐derived mesopores to be preserved while larger macroporous domains are generated. Tuning the interactions enables programmable pore evolution from surface‐mesoporous and multichambered mesoporous architectures to hierarchically meso‐macroporous spheres. The resulting nitrogen‐doped carbon spheres possess uniform sizes (∼355 nm), high surface areas (379.2 m 2 g −1 ), and well‐defined hierarchical pore networks (∼36, ∼62, and ∼121 nm). As metal‐free electrocatalysts, they exhibit enhanced oxygen reduction activity. Our findings establish a general design principle for extending monomicellar assembly from mesoporous materials to hierarchical porous architectures and provide new opportunities for the rational synthesis of multi‐scale porous materials.

Angewandte Chemie
Shihezi University (CN), Lanzhou University (CN), Xinjiang University (CN)
Affordable and clean energy
Openalex Percentile: Top 24%
Mesoporous Materials and Catalysis
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Monomicellar Assembly for Hierarchically Meso‑Macroporous Spheres — Xinghuan Liu, Xin Jia, et al. · Angewandte Chemie (2026) | TGRS Research Map | TGRS