| Literature DB >> 33077582 |
Yong Hu1, Zipeng Guo2, Andrew Ragonese1, Taishan Zhu3, Saurabh Khuje1, Changning Li1, Jeffrey C Grossman3, Chi Zhou4, Mostafa Nouh5, Shenqiang Ren5,6,7.
Abstract
Molecular ferroelectrics combine electromechanical coupling and electric polarizabilities, offering immense promise in stimuli-dependent metamaterials. Despite such promise, current physical realizations of mechanical metamaterials remain hindered by the lack of rapid-prototyping ferroelectric metamaterial structures. Here, we present a continuous rapid printing strategy for the volumetric deposition of water-soluble molecular ferroelectric metamaterials with precise spatial control in virtually any three-dimensional (3D) geometry by means of an electric-field-assisted additive manufacturing. We demonstrate a scaffold-supported ferroelectric crystalline lattice that enables self-healing and a reprogrammable stiffness for dynamic tuning of mechanical metamaterials with a long lifetime and sustainability. A molecular ferroelectric architecture with resonant inclusions then exhibits adaptive mitigation of incident vibroacoustic dynamic loads via an electrically tunable subwavelength-frequency band gap. The findings shown here pave the way for the versatile additive manufacturing of molecular ferroelectric metamaterials.Entities:
Keywords: additive manufacturing; hydrogel; mechanical metamaterials; molecular ferroelectrics; three-dimensional printing
Year: 2020 PMID: 33077582 PMCID: PMC7959491 DOI: 10.1073/pnas.2013934117
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205