Hierarchically engineered nanochannel systems with pore-in/on-pore structures

IF 8.3 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Npg Asia Materials Pub Date : 2023-03-31 DOI:10.1038/s41427-022-00451-y
Minmin Li, Yuchen Cao, Yuting Xiong, Guangyan Qing
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Abstract

Biological ion channels featuring asymmetries in structure, composition, and charge distribution have superior controllable ion transport properties, such as ion selectivity, ion gating, and ion rectification, by which life executes diverse activities, including signal transduction, cell motility, and mass and energy transfer. Inspired by this, researchers have never stopped pursuing artificial ion channels that can achieve comparable functions. Despite successful explorations in many fields, current homogeneous nanochannels, however, have not yet offered sufficient rewards comparable to those of their natural counterparts. However, hierarchically engineered heterogeneous nanochannels have gradually come onto the stage because of their excellent ion selectivity, permeability, and rectification properties and thus have been shining brilliantly in fields such as selective ion transport, energy conversion, biomolecular separation, and detection. In this article, we briefly review the recent advances of hierarchically engineered nanochannel systems in terms of pore-on-pore and pore-in-pore structures, with an emphasis on promising applications, including ion-selective transport, osmotic energy harvesting, separation, and biosensing. Finally, current challenges and conceivable solutions are also discussed to advance the design and applications of hierarchical nanochannel systems. The exquisite structures of biological ion channels provide inspiration for designing and constructing artificial ion channels to achieve analogous functions. Hierarchically engineered heterogeneous nanochannels with excellent ion rectification, selectivity, and gating properties have attracted more and more attention. In this review, we briefly review the recent advances of hierarchically engineered nanochannel systems in terms of pore-on-pore and pore-in-pore structures, with an emphasis on the promising applications, including ion-selective transport, osmotic energy harvesting, separation, and biosensing.

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具有孔内/孔外结构的分层工程纳米通道系统
生物离子通道具有结构、组成和电荷分布不对称的特点,具有优越的可控离子传输特性,如离子选择性、离子门控和离子整流,生命通过离子通道进行多种活动,包括信号转导、细胞运动、质量和能量传递。受此启发,研究人员从未停止追求能够实现类似功能的人工离子通道。尽管在许多领域都有成功的探索,但目前的均质纳米通道还没有提供与天然通道相当的足够回报。然而,层次化工程的非均相纳米通道由于其优异的离子选择性、渗透性和整流性能而逐渐走上舞台,从而在选择性离子传输、能量转换、生物分子分离和检测等领域闪耀着光彩。在本文中,我们简要回顾了分层工程纳米通道系统在孔上孔和孔中孔结构方面的最新进展,重点介绍了其在离子选择性传输、渗透能量收集、分离和生物传感等方面的应用前景。最后,讨论了当前的挑战和可行的解决方案,以推进分层纳米通道系统的设计和应用。生物离子通道的精巧结构为人工离子通道的设计和构建提供了灵感,以实现类似的功能。具有优良离子整流、选择性和门控性能的层次化非均质纳米通道越来越受到人们的关注。在本文中,我们从孔上孔和孔中孔结构方面简要回顾了分层工程纳米通道系统的最新进展,重点介绍了其在离子选择传输、渗透能量收集、分离和生物传感等方面的应用前景。
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来源期刊
Npg Asia Materials
Npg Asia Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
15.40
自引率
1.00%
发文量
87
审稿时长
2 months
期刊介绍: NPG Asia Materials is an open access, international journal that publishes peer-reviewed review and primary research articles in the field of materials sciences. The journal has a global outlook and reach, with a base in the Asia-Pacific region to reflect the significant and growing output of materials research from this area. The target audience for NPG Asia Materials is scientists and researchers involved in materials research, covering a wide range of disciplines including physical and chemical sciences, biotechnology, and nanotechnology. The journal particularly welcomes high-quality articles from rapidly advancing areas that bridge the gap between materials science and engineering, as well as the classical disciplines of physics, chemistry, and biology. NPG Asia Materials is abstracted/indexed in Journal Citation Reports/Science Edition Web of Knowledge, Google Scholar, Chemical Abstract Services, Scopus, Ulrichsweb (ProQuest), and Scirus.
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