Lee Ju-Hyuck, Lee Ju Hun, Xiao Jun, Desai Malav S, Zhang Xiang, Lee Seung-Wuk
Department of Bioengineering , University of California , Berkeley , California 94720 , United States.
Biological Systems and Engineering Division , Lawrence Berkeley National Laboratory , Berkeley , California 94720 , United States.
Nano Lett. 2019 Apr 10;19(4):2661-2667. doi: 10.1021/acs.nanolett.9b00569. Epub 2019 Mar 21.
Controlling the shape, geometry, density, and orientation of nanomaterials is critical to fabricate functional devices. However, there is limited control over the morphological and directional characteristics of presynthesized nanomaterials, which makes them unsuitable for developing devices for practical applications. Here, we address this challenge by demonstrating vertically aligned and polarized piezoelectric nanostructures from presynthesized biological piezoelectric nanofibers, M13 phage, with control over the orientation, polarization direction, microstructure morphology, and density using genetic engineering and template-assisted self-assembly process. The resulting vertically ordered structures exhibit strong unidirectional polarization with three times higher piezoelectric constant values than that of in-plane aligned structures, supported by second harmonic generation and piezoelectric force microscopy measurements. The resulting vertically self-assembled phage-based piezoelectric energy harvester (PEH) produces up to 2.8 V of potential, 120 nA of current, and 236 nW of power upon 17 N of force. In addition, five phage-based PEH integrated devices produce an output voltage of 12 V and an output current of 300 nA, simply by pressing with a finger. The resulting device can operate light-emitting diode backlights on a liquid crystal display. Our approach will be useful for assembling many other presynthesized nanomaterials into high-performance devices for various applications.
控制纳米材料的形状、几何结构、密度和取向对于制造功能器件至关重要。然而,对预合成纳米材料的形态和方向特性的控制有限,这使得它们不适用于开发实际应用的器件。在此,我们通过展示由预合成的生物压电纳米纤维M13噬菌体形成的垂直排列且极化的压电纳米结构来应对这一挑战,利用基因工程和模板辅助自组装过程控制其取向、极化方向、微观结构形态和密度。通过二次谐波产生和压电力显微镜测量证实,所得的垂直有序结构表现出强烈的单向极化,其压电常数比面内排列结构高三倍。所得的垂直自组装基于噬菌体的压电能量收集器(PEH)在17 N的力作用下可产生高达2.8 V的电势、120 nA的电流和236 nW的功率。此外,五个基于噬菌体的PEH集成器件仅通过用手指按压就能产生12 V的输出电压和300 nA的输出电流。所得器件可操作液晶显示器上的发光二极管背光灯。我们的方法将有助于将许多其他预合成的纳米材料组装成用于各种应用的高性能器件。