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April 12, 2026Advanced Materials2 citations

Interfacial Super‐Assembled Hetero‐Structured Chiral Nanochannels for Enantioseparation Applications

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YHYanan HuangUniversity of Technology SydneyNXNengqi XuJiangsu UniversityZLZhuo LiJiangsu University

Key Points

  • The aim is to explore interfacial assembled chiral nanochannel membranes for effective enantioseparation.
  • Summarized construction of hierarchical membranes from zero- to three-dimensional building blocks.
  • Discussed interfacial assembly strategies including phase inversion, electrospinning, and vacuum filtration.
  • Detailed design principles of pore configurations for improved separation efficacy.
  • Demonstrated how chiral nanochannels overcome permeability-selectivity trade-offs.
  • Surveyed transport mechanisms including diffusion-selective and adsorption-selective methods.
  • Outlined future challenges such as scalability and the role of AI in membrane design.

Abstract

Chirality is a fundamental property with profound implications in fields like pharmaceuticals, yet the separation of enantiomers remains a significant technical hurdle. This review chronicles the development of interfacial super-assembled hetero-structured chiral nanochannel membranes, a transformative approach for enantioseparation. We begin by systematically summarizing the construction of these hierarchical membranes from zero- to three-dimensional building blocks, employing a versatile toolbox of interfacial assembly strategies including phase inversion, electrospinning, and vacuum filtration. The design principles of pore-in-pore, pore-on-pore, and multichannel configurations are detailed, demonstrating how they break the conventional permeability-selectivity trade-off. The core transport mechanisms including diffusion-selective, adsorption-selective, and the recently proposed couple-accelerated-selective transport are elucidated. The review also surveys representative material systems, from metal-organic frameworks (MOF) to molecularly imprinted polymers (MIP). We conclude with a forward-looking perspective on persistent challenges, such as scalability and stability, and the immense opportunities presented by artifacial intelligence (AI)-assisted design and bioinspired dynamic membranes for the future of chiral technologies.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69db380f4fe01fead37c63f6https://doi.org/10.1002/adma.202523689
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