纳米技术
材料科学
纳米材料
离子运输机
离子
离子通道
膜
纳米尺度
自组装
分子工程
仿生学
聚合物
甲壳素
纳米结构
神经形态工程学
对偶(语法数字)
纳米流体学
纳米技术的应用
构造(python库)
功能多样性
大规模运输
纳米-
蛋白质工程
作者
Yue Shu,Jin You,H T Wang,Dongdong Ye
出处
期刊:Small
[Wiley]
日期:2026-05-17
卷期号:: e73834-e73834
摘要
Efficient and selective ion transport under nanoscale confinement underlies many emerging technologies, yet current nanofluidic membranes remain predominantly optimized for cation transport. The development of high-performance anion management systems is still in its early stages. Chitin-a sustainable polysaccharide featuring a Bouligand‑type hierarchical structure and readily modifiable functional groups-offers a uniquely advantageous platform for creating positively charged nanofluidic materials that address this gap. In this perspective, we highlight how directional disassembly can unlock a family of two-dimensional chitin nanomaterials, ranging from dense and porous nanosheets to sub-nanosheets and single-molecular-layer nanoribbons. These size‑defined units establish distinct ion transport behaviors, revealing that dimensional engineering and crystalline-domain engineering act as dual core strategies for tuning ion pathways and selectivity. We further argue that crystalline-domain regulation presents a complementary strategy: by expanding polymer chain spacing through precise coordination chemistry, additional intra-layer ion channels can be introduced without compromising structural stability. Taken together, these insights suggest a broader design paradigm in which size-effect modulation and crystalline-domain engineering can be jointly harnessed to construct next-generation chitin-based nanofluidic membranes. Such integrated strategies may pave the way for high-efficiency anion transport control, helping to overcome the long-standing challenges in developing sustainable biomass-based ion-selective systems.
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