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Soft-Matter Nanotubes: A Platform for Diverse Functions and Applications.
Toshimi Shimizu1, Wuxiao Ding1, Naohiro Kameta1
1Nanomaterials Research Institute, Department of Materials and Chemistry , National Institute of Advanced Industrial Science and Technology , Tsukuba Central 5, 1-1-1 Higashi , Tsukuba , Ibaraki 305-8565 , Japan.
Soft-matter nanotubes (SMNTs) offer diverse applications in chemistry, physics, biology, and medicine. This review details their functions and potential, highlighting recent advancements in this field.
Area of Science:
- Materials Science
- Supramolecular Chemistry
- Nanotechnology
Background:
- Soft-matter nanotubes (SMNTs) are tubular architectures formed by self-assembled organic molecules.
- They offer an alternative to hard-matter nanotubes, with tunable properties and diverse functionalities.
- Recent decades have seen significant advancements in designing and synthesizing SMNTs for specific applications.
Purpose of the Study:
- To comprehensively review the functions and applications of various soft-matter nanotubes (SMNTs).
- To highlight key contributions and advancements in SMNT research over the past decade.
- To categorize SMNT applications across chemical, physical, biological, and medical fields.
Main Methods:
- Review of existing literature on self-assembled organic nanotubes.
- Analysis of fifteen different families of SMNTs.
- Categorization of functions and applications based on action fields (interior, wall, exterior, etc.).
Main Results:
- SMNTs exhibit diverse chemical applications, including material encapsulation and sensing.
- Physical functions include ferro-/piezoelectricity, energy storage/migration, and mechanical reinforcement.
- Biological and medical applications encompass artificial chaperones, transmembrane transport, drug delivery, and gene transfer.
Conclusions:
- Soft-matter nanotubes (SMNTs) present a versatile platform with broad applicability.
- Continued research into SMNTs promises further innovation in materials science and medicine.
- The review underscores the significant potential of SMNTs as functional materials and components.
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