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Review

Bioinspired Design Rules from Highly Mineralized Natural Composites for Two-Dimensional Composite Design

1
Department of Biomedical Engineering, Florida International University, Miami, FL 33174, USA
2
Department of Mechanical and Materials Engineering, Florida International University, Miami, FL 33174, USA
3
Materials and Manufacturing Directorate, Air Force Research Laboratory, Wright-Patterson Air Force Base, Dayton, OH 45433, USA
4
University of Dayton Research Institute, Dayton, OH 45469, USA
*
Author to whom correspondence should be addressed.
Biomimetics 2023, 8(6), 500; https://doi.org/10.3390/biomimetics8060500
Submission received: 23 August 2023 / Revised: 12 October 2023 / Accepted: 17 October 2023 / Published: 20 October 2023
(This article belongs to the Special Issue Bio-Inspired Design for Structure Applications)

Abstract

Discoveries of two-dimensional (2D) materials, exemplified by the recent entry of MXene, have ushered in a new era of multifunctional materials for applications from electronics to biomedical sensors due to their superior combination of mechanical, chemical, and electrical properties. MXene, for example, can be designed for specialized applications using a plethora of element combinations and surface termination layers, making them attractive for highly optimized multifunctional composites. Although multiple critical engineering applications demand that such composites balance specialized functions with mechanical demands, the current knowledge of the mechanical performance and optimized traits necessary for such composite design is severely limited. In response to this pressing need, this paper critically reviews structure–function connections for highly mineralized 2D natural composites, such as nacre and exoskeletal of windowpane oysters, to extract fundamental bioinspired design principles that provide pathways for multifunctional 2D-based engineered systems. This paper highlights key bioinspired design features, including controlling flake geometry, enhancing interface interlocks, and utilizing polymer interphases, to address the limitations of the current design. Challenges in processing, such as flake size control and incorporating interlocking mechanisms of tablet stitching and nanotube forest, are discussed along with alternative potential solutions, such as roughened interfaces and surface waviness. Finally, this paper discusses future perspectives and opportunities, including bridging the gap between theory and practice with multiscale modeling and machine learning design approaches. Overall, this review underscores the potential of bioinspired design for engineered 2D composites while acknowledging the complexities involved and providing valuable insights for researchers and engineers in this rapidly evolving field.
Keywords: MXene; 2D materials; bioinspired design; nacre; biomimetic mineralization; multiscale modeling MXene; 2D materials; bioinspired design; nacre; biomimetic mineralization; multiscale modeling

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MDPI and ACS Style

Prasad, A.; Varshney, V.; Nepal, D.; Frank, G.J. Bioinspired Design Rules from Highly Mineralized Natural Composites for Two-Dimensional Composite Design. Biomimetics 2023, 8, 500. https://doi.org/10.3390/biomimetics8060500

AMA Style

Prasad A, Varshney V, Nepal D, Frank GJ. Bioinspired Design Rules from Highly Mineralized Natural Composites for Two-Dimensional Composite Design. Biomimetics. 2023; 8(6):500. https://doi.org/10.3390/biomimetics8060500

Chicago/Turabian Style

Prasad, Anamika, Vikas Varshney, Dhriti Nepal, and Geoffrey J. Frank. 2023. "Bioinspired Design Rules from Highly Mineralized Natural Composites for Two-Dimensional Composite Design" Biomimetics 8, no. 6: 500. https://doi.org/10.3390/biomimetics8060500

APA Style

Prasad, A., Varshney, V., Nepal, D., & Frank, G. J. (2023). Bioinspired Design Rules from Highly Mineralized Natural Composites for Two-Dimensional Composite Design. Biomimetics, 8(6), 500. https://doi.org/10.3390/biomimetics8060500

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