Multifunctional Materials
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Published By Iop Publishing

2399-7532

Author(s):  
Nuttanit Pramounmat ◽  
Katherine Yan ◽  
Jadon Wolf ◽  
Julie Renner

Abstract Platinum-binding peptides have been used for fabrication of complex platinum nanomaterials such as catalysts, metallopharmaceuticals, and electrodes. In this review, we present understanding of the mechanisms behind platinum-binding (Pt-binding) peptides and the applications of the peptides as multifunctional biomaterials. We discuss how the surface recognition, the roles of individual amino acids, and arrangement of amino acid sequences interplay. Our summary on the current state of understanding of Pt-binding peptides highlights opportunities for interdisciplinary research which will expand the applicability of these multifunctional Pt-binding peptides.


Author(s):  
Neng Xia ◽  
Dongdong Jin ◽  
Veronica Iacovacci ◽  
Li Zhang

Abstract Miniature robots and actuators with micrometer or millimeter scale size can be driven by diverse power sources, e.g., chemical fuels, light, magnetic, and acoustic fields. These machines have the potential to access complex narrow spaces, execute medical tasks, perform environmental monitoring, and manipulate micro-objects. Recent advancements in 3D printing techniques have demonstrated great benefits in manufacturing small-scale structures such as customized design with programmable physical properties. Combining 3D printing methods, functional polymers, and active control strategies enables these miniature machines with diverse functionalities to broaden their potentials in medical applications. Herein, this review provides an overview of 3D printing techniques applicable for the fabrication of small-scale machines and printable functional materials, including shape-morphing materials, biomaterials, composite polymers, and self-healing polymers. Functions and applications of tiny robots and actuators fabricated by 3D printing and future perspectives toward small-scale intelligent machines are discussed.


Author(s):  
Jacob Eaton ◽  
Mohammad Naraghi ◽  
James G Boyd

Abstract The emerging research field of structural batteries aims to combine the functions of load bearing and energy storage to improve system-level energy storage in battery-powered vehicles and consumer products. Structural batteries, when implemented in electric vehicles, will be exposed to greater temperature fluctuations than conventional batteries in EVs. However, there is a lack of published data regarding how these thermal boundary conditions impact power capabilities of the structural batteries. To fill this gap, the present work simulates transient temperature-dependent specific power capabilities of high aspect ratio structural battery composite by solving one-dimensional heat transfer equation with heat source and convective boundary conditions. Equivalent circuit modeling of resistivity-induced losses is used with a second-order finite difference method to examine battery performance. More than 60 different run configurations are evaluated, examining how thermal boundary conditions and internal heat influence power capabilities and multifunctional efficiency of the structural battery. The simulated structural battery composite is shown to have good specific Young’s modulus (79.5 to 80.3% of aluminum), a specific energy of 158 Wh/kg, and specific power of 41.2 to 55.2 W/kg, providing a multifunctional efficiency of 1.15 to 1.17 depending on configuration and thermal loading conditions and demonstrating the potential of load-bearing structural batteries to achieve mass savings. This work emphasizes the dependency of power efficiency on cell design and external environmental conditions. Insulating material is shown to improve multifunctional efficiency, particularly for low ambient temperatures. It is demonstrated that as cell temperature increases due to high ambient temperature or heat generation in the battery, the specific power efficiency increases exponentially due to a favorable nonlinear relation between ionic conductivity and cell temperature. The simulations also demonstrate a thermal feedback loop where resistivity-induced power losses can lead to self-regulation of cell temperature. This effect reduces run-averaged losses, particularly at low ambient temperature.


Author(s):  
Junyao Li ◽  
Xiaofeng Liu ◽  
Lingyun Wan ◽  
Xinming Qin ◽  
Wei Hu ◽  
...  

Abstract Graphene quantum dots (GQDs) exhibit abundant magnetic edge states with promising applications in spintronics. Hexagonal zigzag GQDs possess a ground state with an antiferromagnetic (AFM) inter-edge coupling, followed by a metastable state with ferromagnetic (FM) inter-edge coupling. By analyzing the Hubbard model and performing large-scale spin-polarized density functional theory calculations containing thousands of atoms, we predict a series of new mixed magnetic edge states of GQDs arising from the size effect, namely mix-n, where n is the number of spin arrangement parts at each edge, with parallel spin in the same part and anti-parallel spin between adjacent parts. In particular, we demonstrate that the mix-2 state of bare GQDs (C6N2) appears when N ≥ 4 and the mix-3 state appears when N ≥ 6, where N is the number of six-membered-ring at each edge, while the mix-2 and mix-3 magnetic states appear in the hydrogenated GQDs with N = 13 and N = 15, respectively.


Author(s):  
Onur Bas ◽  
Benjamin Gorissen ◽  
Simon Luposchainsky ◽  
Tara Shabab ◽  
Katia Bertoldi ◽  
...  
Keyword(s):  

2021 ◽  
Vol 4 (4) ◽  
pp. 042001
Author(s):  
Hafeesudeen Sahabudeen ◽  
Rainhard Machatschek ◽  
Andreas Lendlein

2021 ◽  
Vol 4 (3) ◽  
pp. 035003
Author(s):  
Quan Wendong ◽  
John Dent ◽  
Valeria Arrighi ◽  
Leide Cavalcanti ◽  
Milo S P Shaffer ◽  
...  

2021 ◽  
Vol 4 (3) ◽  
pp. 034001
Author(s):  
Guocheng Qi ◽  
Sang Nguyen ◽  
David B Anthony ◽  
Anthony R J Kucernak ◽  
Milo S P Shaffer ◽  
...  

Author(s):  
Wilhelm Johannisson ◽  
David Carlstedt ◽  
Awista Nasiri ◽  
Christina Buggisch ◽  
Peter Linde ◽  
...  

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