Department of Chemistry, University of Pittsburgh, 219 Parkman Avenue, Pittsburgh, PA, 15260, USA.
Institute for Chemical-Physical Processes, National Research Council, Viale F. Stagno d'Alcontres 37, Messina, 98158, Italy.
Adv Mater. 2021 Apr;33(17):e2007486. doi: 10.1002/adma.202007486. Epub 2021 Mar 23.
Flexible, biocompatible piezoelectric materials are of considerable research interest for a variety of applications, but many suffer from low response or high cost to manufacture. Herein, novel piezoelectric force and touch sensors based on self-assembled monolayers of oligopeptides are presented, which produce large piezoelectric voltage response and are easily manufactured without the need for electrical poling. While the devices generate modest piezoelectric charge constants (d ) of up to 9.8 pC N , they exhibit immense piezoelectric voltage constants (g ) up to 2 V m N . Furthermore, a flexible device prototype is demonstrated that produces open-circuit voltages of nearly 6 V under gentle bending motion. Improvements in peptide selection and device construction promise to further improve the already outstanding voltage response and open the door to numerous practical applications.
具有柔韧性和生物兼容性的压电材料在各种应用中引起了相当大的研究兴趣,但许多材料的响应较低或制造成本较高。在此,提出了基于低聚肽自组装单层的新型压电力和触摸传感器,它们产生了较大的压电电压响应,并且易于制造,无需进行电极化。尽管这些器件产生的压电电荷常数(d)高达 9.8 pC N,但它们表现出高达 2 V m N 的巨大压电电压常数(g)。此外,还展示了一个柔性器件原型,在柔和的弯曲运动下可产生近 6 V 的开路电压。通过改进肽的选择和器件结构,有望进一步提高出色的电压响应,并为众多实际应用开辟道路。