Abstract

In this paper, we survey recent advances in the self-assembly processes of novel functional platforms for nanomaterials and biomaterials applications. We provide an organized overview, by analyzing the main factors that influence the formation of organic nanostructured systems, while putting into evidence the main challenges, limitations and emerging approaches in the various fields of nanotechology and biotechnology. We outline how the building blocks properties, the mutual and cooperative interactions, as well as the initial spatial configuration (and environment conditions) play a fundamental role in the construction of efficient nanostructured materials with desired functional properties. The insertion of functional endgroups (such as polymers, peptides or DNA) within the nanostructured units has enormously increased the complexity of morphologies and functions that can be designed in the fabrication of bio-inspired materials capable of mimicking biological activity. However, unwanted or uncontrollable effects originating from unexpected thermodynamic perturbations or complex cooperative interactions interfere at the molecular level with the designed assembly process. Correction and harmonization of unwanted processes is one of the major challenges of the next decades and requires a deeper knowledge and understanding of the key factors that drive the formation of nanomaterials. Self-assembly of nanomaterials still remains a central topic of current research located at the interface between material science and engineering, biotechnology and nanomedicine, and it will continue to stimulate the renewed interest of biologist, physicists and materials engineers by combining the principles of molecular self-assembly with the concept of supramolecular chemistry.

Highlights

  • Materials self-assembly is a key strategy for the design and fabrication of nanostructured systems and has become a fundamental approach for the construction of advanced materials and their application in the fields of nanomaterials and biotechnology [1,2,3]

  • At the higher amphiphile concentrations the anisotropic amphiphilic building blocks can spontaneously order themselves in a liquid crystalline (LCs) phase, characterized by an aggregation state which is intermediate between that of a liquid and a crystalline phase [32,33]

  • Self-assembly of amphiphilic block copolymers represents a versatile tool for the design and engineering of advanced materials, as well as an important approach to investigate the complex processes in the field of soft matter and colloidal science [12,75,76,77,78]

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Summary

Introduction

Materials self-assembly is a key strategy for the design and fabrication of nanostructured systems and has become a fundamental approach for the construction of advanced materials and their application in the fields of nanomaterials and biotechnology [1,2,3]. Main examples of the self-assembly method can be found in biomaterials, where the interaction of a structural control and investigation at the nano-scale and of have a parallel development of various macromolecular components and the integration theirstimulated actions allow the occurrence of instrumentation techniques andofobservational methods onexample, those size. ProvidingMoreover, additional for the design and fabrication of versatile smart materials functional theflexibility development of multifunctional nanostructures and biomaterials using the and recent concepts of nanoarchitectonics advanced processes for the self-assembly, suchengineering as nano-devices [10,11,12]. Weefficient present analyzing the directing interactions) with the introduction of chirality, signal processing and recognition processes main parameters that sensitively influence the design of organic nanostructured systems, while putting into evidenceIn challenges, emerging approaches the variousapproaches fields of nanotechology this review limitations we highlightand the recent development of theinself-assembly with a and biotechnology. We present an organized overview, by analyzing the main parameters that sensitively influence the design of organic nanostructured systems, while of putting into evidence challenges, limitations and emerging approaches in the various

Common
Initial State
Final State
Traditional Amphiphile Building Blocks
Liquid Crystalline Nanostructures
design and engineering of advanced
Self-assembly in Ternary Systems
Chemical employed for for the the formation formation
Polymer-based
Amphiphilic Block Copolymers
11. Schematic cross-linked polymer polymer
Self-assembly by Biomolecules Building Blocks
Peptide and Protein Based Bio-Nanomaterials
13. Typical
Lipids
15. Schematic
Emerging Technologies
Carbon Nanotubes
Graphene
Fullerene
Nature-Inspired Nanomaterials
Findings
Conclusions and Future Perspectives
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