Biological and Biologically Inspired Functional Nanostructures: Insights into Structural, Optical, Thermal, and Sensing Applications
Abstract
Abstract Biological materials developed over millennia consist of simple biogenic materials, yet exhibit exceptional functional properties. Leveraging design features from these structures with engineered nanomaterial components can lead to bio‐inspired structures that demonstrate superior performance over traditional engineering materials. We describe nanoscale based architectures in biological systems, their role in enhancement of structural, optical, thermal and sensing properties, and their subsequent translation to bio‐inspired structures. In structurally robust biological materials, we highlight nanoscale design features that enhance strength and stiffness, while retaining toughness. In optically active biological materials, we show how periodic nanostructures manipulate electromagnetic waves resulting in structural coloration as well as antireflective and camouflaging properties. Thermally regulating biological materials utilize nanopores and other nanostructural features to statically or dynamically control temperature. In addition, biological materials that are used in sensing utilize various nanostructures that enhance sensitivity by decreasing activation thresholds for signal transduction. We discuss challenges and opportunities including understanding control mechanisms in the formation of biological materials and leveraging advancements in self‐assembly with new additive manufacturing techniques. The continued evaluation of organisms, including those that exhibit multifunctionality, provides not only new design features and pathways, but significant prospects for innovation in this ever‐emerging field.
Article Details
Authors (16)
Chao Hsuan (Joseph) Sung
Department of Materials Science and Engineering University of California Irvine Irvine CA 92697 USA
Taige Hao
Materials and Manufacturing Technologies Program College of Engineering University of California Irvine Irvine CA 92697 USA
Herry Fang
Department of Materials Science and Engineering University of California Irvine Irvine CA 92697 USA
Andrew Tran Nguyen
Materials and Manufacturing Technologies Program College of Engineering University of California Irvine Irvine CA 92697 USA
Valentina Perricone
Department of Materials Science and Engineering University of California Irvine Irvine CA 92697 USA
Haitao Yu
Wei Huang
Ezra Sarmiento
Department of Materials Science and Engineering University of California Irvine Irvine CA 92697 USA
Adrian Francisco Duran Ornelas
Department of Materials Science and Engineering University of California Irvine Irvine CA 92697 USA
Derek Lublin
Materials and Manufacturing Technologies Program College of Engineering University of California Irvine Irvine CA 92697 USA
Ric Wehling
Air Force Research Laboratory/RW Eglin Air Force Base FL 32542 USA
Sanaz Farajollahi
Air Force Research Laboratory/RX Wright‐Patterson Air Force Base OH 45433 USA
Atsushi Arakaki
Institute of Engineering Division of Biotechnology and Life Science Tokyo University of Agriculture and Technology Tokyo 184‐8588 Japan
Dhriti Nepal
Air Force Research Laboratory Composite Materials Branch 2941 Hobson Way Wright‐Patterson AFB OH 4543–7750 USA
Nathan Patrick Lord
Air Force Research Laboratory/RW Eglin Air Force Base FL 32542 USA
David Kisailus