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在液晶弹性体中实现和局部化各向同性非线性变形。

Enabling and Localizing Omnidirectional Nonlinear Deformation in Liquid Crystalline Elastomers.

机构信息

Air Force Research Laboratory, Materials and Manufacturing Directorate, Wright-Patterson Air Force Base, OH, 45433, USA.

UES Inc., 401 Dayton Xenia Rd, Beavercreek, OH, 45432, USA.

出版信息

Adv Mater. 2018 Aug;30(35):e1802438. doi: 10.1002/adma.201802438. Epub 2018 Jul 15.

DOI:10.1002/adma.201802438
PMID:30009428
Abstract

Liquid crystalline elastomers (LCEs) are widely recognized for their exceptional promise as actuating materials. Here, the comparatively less celebrated but also compelling nonlinear response of these materials to mechanical load is examined. Prior examinations of planarly aligned LCEs exhibit unidirectional nonlinear deformation to mechanical loads. A methodology is presented to realize surface-templated homeotropic orientation in LCEs and omnidirectional nonlinearity in mechanical deformation. Inkjet printing of the homeotropic alignment surface localizes regions of homeotropic and planar orientation within a monolithic LCE element. The local control of the self-assembly and orientation of the LCE, when subject to rational design, yield functional materials continuous in composition with discontinuous mechanical deformation. The variation in mechanical deformation in the film can enable the realization of nontrivial performance. For example, a patterned LCE is prepared and shown to exhibit a near-zero Poisson's ratio. Further, it is demonstrated that the local control of deformation can enable the fabrication of rugged, flexible electronic devices. An additively manufactured device withstands complex mechanical deformations that would normally cause catastrophic failure.

摘要

液晶弹性体(LCE)因其作为致动材料的卓越性能而广受认可。在此,我们研究了这些材料对机械负载的相对不太受关注但同样引人注目的非线性响应。先前对平面排列的 LCE 的研究表明,它们对机械负载表现出单向非线性变形。本文提出了一种实现 LCE 表面模板各向异性取向和机械变形各向同性非线性的方法。各向异性取向表面的喷墨打印可在单片 LCE 元件内实现各向异性和平面取向的局部区域。通过合理设计,对 LCE 的自组装和取向进行局部控制,可获得组成连续但机械变形不连续的功能材料。薄膜中机械变形的变化可以实现非平凡的性能。例如,制备了图案化的 LCE,并证明其具有接近零的泊松比。此外,还证明了变形的局部控制可以实现坚固、灵活的电子设备的制造。增材制造的设备可以承受通常会导致灾难性故障的复杂机械变形。

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